Fungicidal heterocyclic aromatic amides and their compositions, methods of use and preparation
Abstract
Heterocyclic aromatic amides (HAA) according to Formula (I) wherein X1-X4, M, Z, and A are herein defined. The invention also encompasses hydrates, salts and complexes thereof. These compounds are useful as antifungal agents.

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4 claims: 3 independent, 1 dependent
- 1A heterocyclic aromatic amide of the formula I wherein:1. Heterocykliczny amid aromatyczny o wzorze I w którym: R1 is phenyl, cyclopentyl;R1 oznacza fenyl, cyklopentyl;R3 is H, O-C1-C6-alkyl, OC (O) -C1-C6-alkyl, OC (O) -C3-C8-cycloalkyl, OC (O) -C3-C8-alkenyl, OC (O) - phenyl, OC (O) -NH-C1-C6-alkyl, OC (O) -O-C1-C6-alkyl;R3 oznacza H, O-C1-C6-alkil, O-C(O)-C1-C6-alkil, O-C(O)-C3-C8-cykloalkil, O-C(O)-C3-C8-alkenyl, O-C(O)-fenyl, O-C(O)-NH-C1-C6-alkil, O-C(O)-O-C1-C6-alkil;R7 is H, Me;R7 oznacza H, Me;X4 is CH, CMe, COMe, COEt, CSMe;and X4 oznacza CH, CMe, COMe, COEt, CSMe;i W is CH2, O. W oznacza CH2, O.
- 2A fungicidal composition comprising an active agent and a phytologically acceptable carrier, characterized in that the active agent is a compound as defined in claim 1, 1. 2. Kompozycja grzybobójcza zawierająca środek aktywny i fitologicznie dopuszczalny nośnik, znamienna tym, że jako środek aktywny zawiera związek jak określono w zastrz. 1.
- 4A method of combating or preventing an infection by a fungus wherein a fungicidally effective amount of a compound as defined in claim 1 is applied to the site of the fungus or the site where infection is to be controlled or prevented, excluding a living human or animal body. 1. 4. Sposób zwalczania lub zapobiegania zakażeniom grzybami, znamienny tym, że na miejsce występowania grzyba lub miejsce, w którym zakażenie należy zwalczać lub mu zapobiegać, z wyłączeniem żywego ciała ludzkiego lub zwierzęcego, aplikuje się grzybobójczo skuteczną ilość związku jak określono w zastrz. 1.
Independent claims3
1,214 paragraphs in 118 sections, as filed
Description of the invention
Background of the invention
Field of Invention:
The present invention relates to a heterocyclic aromatic amide, a fungicidal composition thereof, and a method for controlling or preventing fungal infection relates to the field of fungicidal compositions and methods.
Description of the state of the art:
A variety of antifungal compositions and methods are known in the art. For example, antimycin has been identified as a naturally occurring substance produced by Streptomyces spp. With antibiotic properties (Barrow, CJ; et al., Journal of Antibiotics, 1997, 50 (9), 729). These substances have also proven to be effective fungicides (The Merck Index, 12th Ed., Eds. S. Budavari, Merck and Co., Whitehouse Station, NJ, 1996, p. 120). WO 97/08 135 describes acylaminosalicylic acid amides which are useful as pesticides. European Patent Application No. EP-A-0-661269 discloses substituted heterocyclic carboxylic acid amides useful as medicaments. Japanese Patent Application No. JP-A7-233165 discloses antifungal dilactones having 3-hydroxypyridine carboxyl groups with antifungal activity. The isobutyryl, tigloyl, iso-valeryl and 2-methylbutyryl derivatives of the latter compounds are further described in the following references: Tetrahedron 1998, 54, 12745-12774; J. Antibiot. 1997, 50 (7), 551; J. Antibiot. 1996, 49 (7), 639; J. Antibiot. 1996, 49 (12), 1226; and Tetrahedron Lett. 1998, 39, 4363-4366.
However, there is still a need for new fungicides. The present invention relates to fungicides which have high residual activity, greater activity at lower doses, curative activity and a broader spectrum of action.
Summary of the invention
Briefly describing one aspect of the present invention, it relates to heterocyclic aromatic amide (HAA) compounds of Formula I:
<img file="PL205059B1_D0001.tif" />
wherein R1, R3, R7, W and X4 are as defined hereinafter.
The invention also relates to fungicidal compositions containing HAA in combination with phytologically acceptable carriers.
Another object of the present invention is a method for controlling and / or preventing fungal infections, which method comprises the application of HAA.
Further objects and advantages of the present invention will become apparent from the description below.
General scope of the invention
The present invention relates to various HAA compounds that are active as antifungal agents. The invention also includes compositions containing HAA compounds, and methods of using the HAA compounds to combat or prevent fungal infections.
HAA compounds
The novel antifungal heterocyclic aromatic amides of the present invention are described by the following formula I:
PL 205 059 B1
<img file="PL205059B1_D0002.tif" />
wherein:
R1 is phenyl, cyclopentyl;
R3 is H, O-C1-C6-alkyl, OC (O) -C1-C6-alkyl, OC (O) -C3-C8-cycloalkyl, OC (O) -C3-C8-alkenyl, OC (O) - phenyl, OC (O) -NH-C1-C6-alkyl, OC (O) -O-C1-C6-alkyl;
R7 is H, Me;
X4 is CH, CMe, COMe, COEt, CSMe; and
W is CH2, O.
The terms alkyl, alkenyl, alkynyl, and the like, as used herein, include both straight and branched groups; the terms alkenyl, alkenylene and the like are meant to include groups containing one or more double bonds. Cycloalkyl, as used herein, refers to C3-C8-cycloalkyl groups having 0-3 heteroatoms and 0-2 unsaturation. The above terms further include substituted or unsubstituted forms. Unless specifically defined otherwise, a substituted form refers to the substitution of one or more groups selected from the group consisting of halogen, hydroxy, cyano, nitro, aroyl, aryloxy, aryl, arylthio, heteroaryl, heteroaryloxy, heteroarylthio, C1-C8 -acyl, C1-C6-haloalkyl, C1-C6-alkoxy, C1-C6-haloalkoxy, C1-C6-alkylthio, C1-C6-haloalkylthio, carboaryloxy, carboheteroaryloxy, C1-C6-carboalkoxy or an amide group which is unsubstituted or substituted by one or two C1-C6-alkyl groups. All of the above terms and definitions assume that the principles of chemical bonding and deformation energy are not violated.
The term aryl as used herein refers to a substituted phenyl or naphthyl group. The term heteroaryl refers to any 5 or 6 membered aromatic ring containing one or more heteroatoms; these heteroaromatic rings can also be fused with other aromatic systems. The above terms further include substituted or unsubstituted forms. Substituted form refers to substitution with one or more groups selected from the group consisting of nitro, C1-C6-alkyl, C1-C6-halogenoalkyl, C3-C6-cycloalkyl, C2-C6-alkenyl, C2-C6-alkynyl, aryl, heteroaryl, halogen, hydroxy, C1-C6-alkoxy, C1-C6-halogeno-alkoxy, C1-C6-alkylthio, C1-C6-alkylsulfonyl, C1-C6-alkylsulfinyl, C1-C6-OC (O) alkyl, OC ( O) aryl, C3-C6-OC (O) -cycloalkyl, C1-C6-NHC (O) alkyl, C3-C6-NHC (O) cycloalkyl, NHC (O) aryl, NHC (O) heteroaryl, C3-C6 -cycloalkylthio, C3-C6-cycloalkylsulfonyl, C3-C6-cycloalkylsulfinyl, aryloxy, heteroaryloxy, heteroarylthio, heteroarylsulfinyl, heteroarylsulfonyl, arylthio, arylsulfinyl, arylsulfonyl, C (O) Ry, C (NORx) Ry where Ry, and Rx are independently -alkyl, C1-C6-alkenyl, C3-C6-cycloalkyl, aryl or heteroaryl, wherein each of the alkyl or cycloalkyl containing substituents may be substituted with one or more halogens, and with the condition, that the principles of chemical bonds and the deformation energy are not violated.
The term halogen as used herein includes chlorine, bromine, fluorine, and iodine. The terms haloalkyl and the like refer to groups substituted with one or more halogen atoms.
The term Me as used herein refers to a methyl group. The term Et refers to an ethyl group. The term Pr refers to the propyl group. The term Bu refers to the butyl group. The term EtOAc refers to ethyl acetate.
The term alkoxy as used herein refers to a straight or branched alkoxy group. The term haloalkoxy refers to an alkoxy group substituted with one or more halogen atoms.
The term heteroatom as used herein refers to O, S and N.
It should be understood that certain combinations of substituent groups for compounds falling within the definitions given herein will be unmanageable for steric and / or chemical reasons. Such compounds are not within the scope of the invention.
PL 205 059 B1
The various hydrates, salts and complexes of the compounds of Formula I can be prepared in a conventional manner. For example, salts can be prepared by replacing the hydroxy hydrogen atom (M = H) with a cation, e.g. NH<sup>4+</sup>, <sup>+</sup>N (Bu)<sub>4</sub>, K<sup>+</sup>, Na<sup>+</sup>, Ca<sup>2+</sup>, Li<sup>+</sup>, Mg<sup>2+</sup>, Fe<sup>2+</sup>, Cu<sup>2+</sup>, etc. These derivatives are also useful according to the present invention.
Throughout this document, all temperatures are given in degrees Celsius (° C) and all percentages are percentages by weight unless otherwise stated. The term ppm refers to parts per million. The term psi refers to pounds per square inch. The term mp refers to the melting point. The term bp refers to the boiling point.
Preparation of compounds
The compounds of the present invention are prepared using well-known chemical procedures. The necessary starting materials are commercially available or readily synthesized using standard procedures.
It should be noted that, among the embodiments, the present invention includes compounds Nos. 569, 658, 703 and 704 in Tables I and II. The remainder of the described compounds and their methods of preparation are reference examples which, while not themselves within the scope of the present invention, provide the reader with a more complete overview of the chemistry and synthetic methodology used, as background for the invention or describe the preparation of intermediates useful in the synthesis of the compounds of the invention.
General procedures for the preparation of pyridine-2-carboxamides.
The required HAA (2) is prepared by reacting the corresponding orthohydroxy heteroaromatic carboxylic acid (1) with an amine in the presence of a coupling reagent (phosgene or 1- [3-dimethylaminopropyl] -3-ethylcarbodiimide hydrochloride [EDCI]) plus 1-hydroxybenzotriazole (HOBt) or 1-hydroxy-7-azabenzotriazole (HOAt) and an acid scavenger, e.g. N-methyl morpholine (NMM), triethylamine, 4- (dimethylamino) pyridine (DMAP), or diisopropylethylamine) (Scheme 1). In some cases, acid chlorides with protected hydroxyl groups such as (3) can be reacted with an appropriate amine to form the intermediate amides (4). Removal of the protecting groups by hydrogenation in the presence of a palladium (Pd) catalyst gives the desired product (2X). Closure of the hydroxyl group of the heterocycle in compound 2 with an acyl, sulfonyl or silyl group (M) can be easily accomplished by reacting the corresponding compound 2 with carboxylic acid chloride, sulfonyl chloride or silyl chloride (MCI) in a suitable solvent such as pyridine using an acylation catalyst such as as DMAP to give the corresponding O-acyl, O-sulfonyl or O-silyl derivative (2Y).
<img file="PL205059B1_D0003.tif" />
Scheme 1
PL 205 059 B1
Preparation of orthohydroxyheteroaromatic carboxylic acids 1.
Preparation of carboxylic acids 1 (X1 = N, X2 = X3 = CH, X4 = independently C-Me, C-SMe,
C-Cl) is shown in Scheme 2. Reaction of 3-hydroxy-2-bromopyridine (5) with 2- (trimethylsilyl) ethoxymethyl chloride (SEM-Cl) using potassium t-butoxide as a base in 1: 1 dimethylformamide (DMF) -tetrahydrofuran (THF) gave the desired ether 6. Deprotonation of 6 with lithium diisopropylamide (LDA) followed by condensation with an appropriate electrophile (iodomethane, dimethyl disulfide, or hexachloroethane) gave 4-substituted pyridine 7. Bromine / lithium exchange between compound 7 and n-butyllithium (n-BuLi) followed by carboxylation with carbon dioxide (CO2) and acid hydrolysis gave the desired 4-substituted-3-hydroxypicolinic acid 1X.
<img file="PL205059B1_D0004.tif" />
Alternatively, 3-hydroxypyridine (8) can be condensed with SEM-Cl to give 9 (scheme 3). Deprotonation of 9 with t-butyllithium (t-BuLi) followed by condensation with N-fluorobenzenesulfonimide gives the 4-fluoro derivative 10. Condensation of 10 with sodium ethoxide gives the diether 11. Deprotonation of 11 with t-BuLi followed by carboxylation and acid hydrolysis gives the desired 4-ethoxypyridine 1X (X = OEt).
PL 205 059 B1
<img file="PL205059B1_D0005.tif" />
The preparation of acid chloride 3 is shown in Scheme 4. Thus, 3-hydroxypicolinic acid (12) was converted to methyl ester 13 in refluxing methanol using boron trifluoride catalyst. Compound 13 was then brominated with bromine in aqueous base to give dibromide 14. Benzyl ether 15 was then prepared by condensing compound 14 with benzyl chloride in the presence of sodium hydride. Careful methanolysis of 15 in methanol / potassium carbonate gave the 4-methoxypicolinic acid derivative 16. Conversion of 16 to acid chloride 3 was done with oxalyl chloride using benzene as solvent and a catalytic amount of DMF.
<img file="PL205059B1_D0006.tif" />
Preparation of 4-ethoxy-3-hydroxypicoyic acid (1, X1 = N, X2 = X3 = H, X4 = COEt) (see schemes 1 and 3).
PL 205 059 B1
<img file="PL205059B1_D0007.tif" />
a. Preparation of 3- (2- (trimethylsilyl) ethoxymethoxy) pyridine (9).
To a stirred mixture of DMF (100 ml) and THF (100 ml) was added solid potassium t-butoxide (17.96 g,
0.16 mol). After all the solid had dissolved, the solution was cooled to <5 ° C and 3-hydroxypyridine (14.25 g, 0.15 mol) was added in one portion. After stirring for 10 minutes, the mixture was cooled to -10 ° C and SEM-Cl (25 g, 0.15 mol) was added dropwise at such a rate that the internal temperature remained <-5 ° C. After the addition was complete, the mixture was stirred at 0 ° C for an hour, then at room temperature for 2 hours. The mixture was poured into water (600 ml) then extracted with ether (3 x 150 ml). The ether extracts were combined, washed sequentially with 2 N Na-OH (100 mL), water (50 mL), and saturated NaCl (100 mL), dried (MgSO4), and concentrated to give a brown liquid. Distillation gave the desired ether 9 as a colorless liquid (20.8 g), bp 95-99 ° C at 0.03 mm of Hg.
b. Preparation of 4-Fluoro-3- (2- (trimethylsilyl) ethoxymethoxy) pyridine (10).
To a stirred solution of 9 (12.39 g, 0.055 mol) in ether (200 ml) cooled to <-70 ° C under argon, t-BuLi (40 ml, 1.5 M pentane solution) was added slowly. The reaction temperature was kept at <-68 ° C during the addition. After the addition was complete, the mixture was stirred for an additional 60 minutes at <-70 ° C, then transferred via cannula to a stirred solution of N-fluorobenzenesulfonimide (18.92 g) in dry THF (200 mL) which was also cooled to <-70 ° C. under argon. After the addition was complete, the cooling bath was removed and the reaction mixture was allowed to warm to room temperature. Water (100 ml) was added and the organic phase was separated, dried (MgSO4) and concentrated to give a brown oil. Chromatography (silica gel, hexane-acetone, 9: 1) gave the desired product 10 as an orange oil (7.5 g) which had about 15% starting material. This crude mixture was used directly in the next reaction.
c. Preparation of 4-ethoxy-3- (2- (trimethylsilyl) ethoxymethoxy) pyridine (11).
Compound 10 (1.07 g, 4.4 mmol) was added in one portion to a stirred solution of sodium ethoxide (0.9 g, 13 mmol) in ethanol (10 mL). The resulting mixture was stirred at room temperature for 48 hours, then poured into water (100 mL). The resulting mixture was extracted with ether (3 x 50 mL). The ether extracts were combined, dried (MgSO4) and concentrated. The resulting amber oil was chromatographed (silica gel, hexane-acetone, 4: 1) to give compound 11 as a yellow oil (0.6 g).
d. 4-ethoxy-3-hydroxypyridine-2-carboxylic acid (1, X1 = N, X2 = X3 = CH, X4 - COEt).
A stirred solution of compound 11 (2.9 g) in THF (50 mL) under argon was cooled to <-70 ° C. To it, t-BuLi (8 mL, 1.5 M pentane) was slowly added keeping the reaction temperature <-66 ° C. After the addition was complete, the mixture was stirred at <-70 ° C for 45 minutes and then poured onto a slurry of crushed dry ice in ether. The resulting mixture was stirred until it reached room temperature, then the solvents were evaporated. THF (25 mL) and 4 N HCl (15 mL) were added to the residue, and the resulting mixture was stirred at room temperature for 2 hours. At the end of this period, the insoluble matter was filtered off, washed with a small volume of THF and air dried to give the title compound as a white solid (1.05 g).
Preparation of 6-bromo-3-benzyloxy-4-methoxypyridine-2-carboxylic acid (16) and its acid chloride (3) (see scheme 4).
<img file="PL205059B1_D0008.tif" />
a. Preparation of methyl 4,6-dibromo-3-hydroxypyridine-2-carboxylate (14).
Water (800 mL) and methyl 3-hydroxypyridine-2-carboxylate (15.3 g) were added to a two-liter, three-necked flask equipped with a dropping funnel and mechanical stirrer. To this mixed solution
Bromine (32 g) was slowly added. As the reaction proceeded, the solid separated from the solution and the reaction mixture became difficult to stir. After the addition was complete, the mixture was vigorously stirred until the bromine color disappeared.<sup>1</sup>H-NMR (CDCl3) of a small sample of the crude product showed it to be an approximately 3: 1 mixture of mono to dibromated product. Sodium carbonate (31.8 g) was carefully added to the reaction mixture, followed by additional bromine (12 g) added dropwise. After the bromine color had disappeared, the pH of the reaction mixture was adjusted to approximately 5 with concentrated HCl and the resulting mixture was extracted with CH 2 Cl 2 (3 x 150 mL). The organic extracts were combined, dried (MgSO4), and concentrated to give an orange solid (14 g). This material can be recrystallized from methylcyclohexane (after treatment with activated carbon) to give compound 14 as a white solid, mp 181-183 ° C.
b. Preparation of methyl 4,6-dibromo-3-benzyloxypyridine-2-carboxylate (15).
Compound 14 (7.1 g) was slowly added to a stirred mixture of sodium hydride (0.6 g) in DMF (50 ml).
After the addition was complete, the mixture was stirred at room temperature for 15 minutes, then benzyl chloride (3.05 g) was added all at once. The mixture was then heated at 90 ° C for 6 hours, cooled, poured into water (500 ml) and extracted with ether (2 x 200 ml). The ether extracts were combined, washed with 2N NaOH (50 ml), dried (MgSO4) and the solvent was evaporated to give 15 as a light yellow solid (8.3 g). Recrystallization from a small volume of methanol gave an analytical sample, mp 75-76 ° C.
c. 6-Bromo-3-benzyloxy-4-methoxypyridine-2-carboxylic acid (16).
A vigorously stirred mixture of 15 (25.5 g), potassium carbonate (75 g) and methanol (300 ml) was heated under reflux for 30 hours. The mixture was cooled, poured into water (800 ml) and the pH was adjusted to 2 by addition of concentrated HCl. The resulting mixture was extracted with CH2Cl2 (3 x 150 mL). The organic extracts were combined, dried (MgSO4) and the solvent evaporated to give a nearly colorless oil (20.5 g) which slowly solidified on standing. This was recrystallized from methanol (125 ml) / aqueous (40 ml) to give the desired acid 16 (11.6 g), mp 134-135 ° C.
d. Preparation of 6-bromo-3-benzyloxy-4-methoxypyridine-2-carbonyl chloride (3).
To a stirred mixture of compound 16 (2.54 g, 7.5 mmol) in benzene (30 mL) containing
DMF (3 drops) was added oxalyl chloride (1.90 g, 15 mmol) in one portion. After gas evolution ceased (approximately 45 minutes), the homogeneous solution was stirred for an additional 15 minutes then the solvent was evaporated. 1,2-Dichloroethane (30 ml) was added and the solvent was evaporated again to give compound 3 in quantitative yield as an almost colorless oil. This material was dissolved in CH2Cl2 (10 mL) or THF (10 mL) and used directly in further coupling reactions.
6-bromo-3-hydroxypicolinic acid (17).
<img file="PL205059B1_D0009.tif" />
To a mechanically stirred solution of methyl 3-hydroxypicolinate (30.6 g) in water (800 ml) was slowly added bromine (32 g) over 30 minutes. After the addition was complete, stirring was continued for an additional hour. Ether (300 ml) was added and stirring was continued until all the solid had dissolved. The organic layer was separated and the aqueous phase was extracted with ether (200 ml). The organic phases were combined, dried (MgSO4) and the solvent evaporated to give 32.8 g of methyl 6-bromo-3-hydroxypicolinate as an off-white solid. Recrystallization from methanol / water gave an analytical sample, mp 115-117 ° C.
To a stirred solution of this ester (2.32 g) in THF (15 ml) was added a solution of LiOH.H2O (1 g) in water (7 ml) in one portion. The resulting mixture was stirred for 2 hours at room temperature, then poured into water (100 ml). The pH was adjusted to about 3 with 1 N HCl, then the mixture was extracted with CH 2 Cl 2 (3 x 100 mL). The organic extract was dried (MgSO4), filtered, and concentrated to give 2.0 g of a white solid which<sup>1</sup>H-NMR and MS were consistent with the desired title acid 17.
PL 205 059 B1
3-benzyloxy-6-methoxypicolinic acid (18).
<img file="PL205059B1_D0010.tif" />
A solution of methyl 3-benzyloxypicolinate (4.86 g) and 3-chloroperoxybenzoic acid (5.75 g, 60% peracid) in CH2Cl2 (100 mL) was stirred at room temperature for 40 hours. The reaction mixture was then extracted with 5% sodium bisulfite solution (100 ml), then with 0.5 N NaOH solution (150 ml). After drying (MgSO4), the solvent was evaporated to yield 4.9 g of methyl 3-benzyloxypicolinate 1-oxide as a white solid. Recrystallization from methyl-cyclohexane / toluene gave a crystalline solid, mp 104-106 ° C.
A solution of this compound (16.1 g) in acetic anhydride (80 ml) was stirred and heated in an oil bath at 125 ° C for 3 hours. The excess acetic anhydride was removed on a rotary evaporator and the residue was dissolved in methanol (200 ml). Concentrated sulfuric acid (1 ml) was added and the resulting mixture was heated to reflux for 90 minutes. The solvent was evaporated, then saturated sodium bicarbonate was added to the residue. The resulting mixture was extracted with CH2Cl2 (3 x 100 mL). The organic fractions were combined, dried (MgSO4) and the solvent evaporated to give 15.5 g of methyl 3-benzyloxy-6-hydroxypicolinate as a yellow solid. Recrystallization from toluene gave a pale yellow solid, mp 91-92 ° C.
To a stirred solution of this compound (10.25 g) in toluene (125 ml) heated in an oil bath to 60 ° C, was added silver carbonate (16.6 g) followed by methyl iodide (8.52 g). The resulting mixture was stirred and heated for 3 hours at 60 ° C. After cooling, the mixture was filtered through Celite® and the solvent was evaporated to yield a yellow oil. Chromatography on silica gel (4: 1 hexane / acetone) gave an almost colorless oil, the data of which<sup>1</sup>H-NMR and MS were consistent with methyl 3-benzyloxy-6-methoxypicolinate. Hydrolysis of this ester to the title acid 18 was accomplished with LiOH.H2O as described above for the related esters.
4-hydroxypyrimidine-5-carboxylic acid (19).
<img file="PL205059B1_D0011.tif" />
Ethyl 4-hydroxypyrimidine-5-carboxylate can be prepared according to the procedure of M. Pesson et al., Eur. J. Med. Chem. Chim. Ther. 1974, 9, 585. A solution of this ester (500 mg, 3 mmol) in THF (10 mL) and MeOH (5 mL) was treated with LiOH.H2O (373 mg, 8.9 mmol) and stirred overnight. The mixture was quenched with concentrated HCl (1 mL) and extracted with EtOAc (2 x 20 mL). The combined organic extract was dried (MgSO4) and concentrated to give 260 mg of the title compound 19 as an orange solid, mp 220 ° C (decomposition).
4-hydroxy-2-methylpyrimidine-5-carboxylic acid (20).
<img file="PL205059B1_D0012.tif" />
Ethyl 4-hydroxy-2-methylpyrimidine-5-carboxylate was prepared according to the procedure of Geissman et al., J. Org. Chem., 1946, 11, 741. A solution of this ester (750 mg, 4.11 mmol) in THF (10 mL) and MeOH (5 mL) was treated with LiOH.H2O (431 mg, 10.3 mmol) and stirred overnight. . The mixture was quenched with concentrated HCl (1 mL) and extracted with EtOAc (2 x 20 mL). The combined organic extract was dried (MgSO4) and concentrated to give 155 mg of the title compound 20 as a white solid, mp 180 ° C (decomposition).
PL 205 059 B1
5,6-Dichloro-3-hydroxypyrazine-2-carboxylic acid (21).
<img file="PL205059B1_D0013.tif" />
Methyl 3-amino-5,6-dichloropyrazine-2-carboxylate (5.0 g, 23 mmol) was stirred in concentrated sulfuric acid (140 ml) and cooled to 0 ° C. Sodium nitrite was added slowly keeping the temperature near 0 ° C. After an additional 30 minutes at 0 ° C, the mixture was allowed to warm to ambient temperature and stirred for 3 hours. The mixture was poured onto 500 g of ice which caused bubbling and foaming. After 30 minutes, the mixture was extracted 3 times with EtOAc. The combined organic extract was dried (MgSO4), filtered and concentrated. The remaining yellow solid was washed with water and air dried to give 5.0 g of a yellow solid, mp 114-116 ° C, whose spectrum is<sup>13</sup>C-NMR was consistent with the methyl ester of the title compound.
This solid (5.0 g) was treated with 1 N NaOH (20 mL) and the mixture was heated at 90 ° C for 1.5 hours. After cooling, the mixture was acidified with concentrated HCl, then extracted 3 times with EtOAc. Drying (MgSO4), filtration and concentration gave 0.48 g of a dark yellow solid, the spectra of which<sup>1</sup>H-NMR and MS were consistent with the title acid 21.
6-ChIoro-3-hydroxy-5-methoxy-pyrazine-2-carboxylic acid (22).
<img file="PL205059B1_D0014.tif" />
A mixed mixture of methyl 3-amino-5,6-dichloropyrazine-2-carboxylate (5.0 g, 23 mmol) and sodium methoxide (3.6 g, 67.5 mmol) in absolute MeOH (50 mL) was heated to reflux. for 2 hours, then allowed to cool and acidified with concentrated HCl. The precipitate was collected by filtration, washed with water and air dried to give 3.6 g of a tan solid. Recrystallization from hexane-EtOAc (1: 1) gave 2.6 g of a pale yellow solid, the spectra of which were consistent with methyl 3-amino-6-chloro-5-methoxypyrazine-2-carboxylate.
This compound (1 g, 4.6 mmol) was dissolved in concentrated sulfuric acid, cooled to 0 ° C, and treated slowly with sodium nitrite (0.5 g, 6.9 mmol). After 30 minutes at 0 ° C, the mixture was poured into 300 g of a mixture of ice and water which resulted in foaming. Stirring was continued for 30 minutes, then the solid was collected by filtration and washed with water. The wet solid was dissolved in EtOAc, dried (MgSO4), filtered and concentrated. This gave 0.95 g of an off-white solid, mp 180-182 ° C, whose NMR spectra were consistent with methyl 6-chloro-3-hydroxy-5-methoxypyrazine-2-carboxylate.
This solid (0.9 g, 4.1 mmol) was treated with 1 N NaOH (60 mL) and the mixture was stirred for 1 hour then acidified with concentrated HCl. The precipitate was collected by filtration and washed with water, then dissolved in EtOAc, dried (MgSO4), filtered and concentrated. This gave 0.62 g of a pale yellow solid, mp 170-173 ° C whose spectra were consistent with the desired title acid 22.
4-hydroxyisothiazole-3-carboxylic acid (23).
This acid was prepared according to the procedure shown in scheme 5.
PL 205 059 B1
<img file="PL205059B1_D0015.tif" />
Thus, to a stirred solution of solid KOH (88%, 6.98 g, 0.11 mol) in 75 mL of EtOH in a nitrogen purged flask was added thiolacetic acid (8.36 g, 0.11 mol) washed with 25 mL of EtOH. The mixture was stirred under nitrogen for 5 minutes in a closed flask. To it 0.1 mol of crude bromine compound (freshly prepared according to M. Hatanaka and T. Ishimaru, J. Med. Chem., 1973, 16, 798) was added. The flask was purged with nitrogen and capped. The mixture was stirred in a water bath at room temperature for 3 hours, then poured into 300 ml of CH2Cl2 and 1000 ml of water. The aqueous layer was extracted four times with 200 mL of CH2Cl2. The combined organic extracts were washed with 100 ml of cold water and saturated saline solution and dried. The crude mixture was filtered and concentrated. The resulting oil was chromatographed on silica gel using diethyl ether as eluent to give 13 g of a light yellow oil which solidified to a gummy solid on standing. Spectral data was consistent with ethyl 2-acetylamino-4-acetylthio-3-oxobutanoate.
To a vigorously stirred solution of this compound (12.95 g) in 450 ml of chloroform which was cooled in an ice bath below 5 ° C, bromine (15.8 g, 2 eq.) In 50 ml of chloroform was added dropwise over 45 minutes. Stirring was continued in the ice bath for an additional 45 minutes and then at ambient temperature for 30 hours. The mixture was washed with 200 ml of water followed by another 100 ml of water. The combined water washes were back-extracted with 100 ml of chloroform. The combined chloroform solutions were washed with saturated brine and dried over MgSO4. The solution was filtered and concentrated to a crude oil. It was chromatographed on silica gel using successive gradients from Petroleum Ether-CH2Cl2 (3: 1) to CH2Cl2, first yielding 0.79 g
Ethyl 5-bromo-4-hydroxy-isothiazole-3-carboxylate, then 3.40 g of ethyl 4-hydroxy-isothiazole-3-carboxylate as colorless crystals, m.p. 44-7 ° C, compatible with MS and <sup>1</sup>H-NMR.
To 710 mg of the latter ester in 30 ml of THF was added 370 mg of LiOH.H2O (2.2 eq.) In 10 ml of water. The mixture was stirred for 3 hours at ambient temperature then cooled in a refrigerator. The precipitated solid was collected by filtration to obtain 710 mg of the dithium salt of the carboxylic acid. This salt was dissolved in 7 mL of water, cooled in an ice bath, and acidified to pH 1 by adding 2N HCl. The resulting solution was extracted three times with 50 mL of EtOAc. The combined extracts were washed with 5 mL of brine and dried (Na2SO4), filtered, and the filtrate was placed in the refrigerator. The cooled solution was filtered again and the filtrate was concentrated to give 230 mg of a colorless solid, mp 185-89 ° C, spectral<sup>1</sup>H-NMR i <sup>13</sup>C-NMR was consistent with the title compound 23.
3-Benzyloxy-1-methylpyrazole-4-carboxylic acid (24) and 5-benzyloxy-1-methylpyrazole-4-carboxylic acid (25).
<img file="PL205059B1_D0016.tif" />
A mixture of ethyl 3-hydroxy-1-methylpyrazole-4-carboxylate and ethyl 5-hydroxy-1-methylpyrazole-4-carboxylate (obtained by the procedure of Y. Wang, et al., Zhejiang Gongxueyuan Xuebao, 1994, 2, 67), benzylated according to the procedure of S. Yamamoto, et al., Japanese Patent No. JP 62148482, 1987, and the mixture was separated by column chromatography using a 3: 1 mixture as eluent.
Hexanes: EtOAc to give ethyl 3-benzyloxy-1-methylpyrazole-4-carboxylate and ethyl 5-benzyloxy-1-methylpyrazole-4-carboxylate, which were pure according to <sup>1</sup>H-MNR.
Ethyl 3-benzyloxy-1-methylpyrazole-4-carboxylate (283 mg, 1.08 mmol) in THF (10 mL), MeOH (2 mL), and water (5 mL) was treated with LiOH.H2O (91 mg, 2.17 mmol) and stirred overnight. The mixture was quenched with concentrated HCl (1 mL) and extracted with EtOAc (2 x 20 mL). The combined organic layers were dried (MgSO4) and concentrated to give a white solid (227 mg), mp 169-172 ° C whose spectra were consistent with 3-benzyloxy-1-methylpyrazole-4-carboxylic acid (24).
Ethyl 5-benzyloxy-1-methylpyrazole-4-carboxylate (755 mg, 2.9 mmol) was similarly hydrolyzed using LiOH.H2O (243 mg, 5.8 mmol) in THF (20 mL), MeOH (4 mL), and water (10 mL) to give 608 mg of 5-benzyloxy-1-methyl-4-carboxylic acid (25) as a white solid, mp 117-122 ° C.
Preparation of other heteroaromatic carboxylic acids.
4-Hydroxynicotinic acid was prepared by the procedure of M. Mittelbach et al., Arch. Pharm. (Weinheim, Germany) 1985, 318, 481-486. 2-Hydroxy-6-methylnicotinic acid can be prepared according to the method of A. Dornow, Chem. Ber. 1940, 73, 153. 4,6-Dimethyl-2-hydroxynicotinic acid can be prepared according to the method of R. Mariella and E. Belcher, J. Am. Chem. Soc., 1951, 73, 2616. 5-chloro-2-hydroxy-6-methylnicotinic acid can be prepared by the procedure of A. Cale et al., J. Med. Chem., 1989, 32, 2178. 2,5-dihydroxynicotinic acid can be prepared by the method of P. Nantek-Namirski and A. Rykowski, Chem. Abstr., 1972, 77, 114205. 3-Hydroxyisonicotinic acid was prepared according to the method of JD Crum and CH Fuchsman, J. Heterocycl. Chem. 1966, 3, 252-256. 3-Hydroxypyrazine-2-carboxylic acid can be prepared according to the method of AP Krapcho et al., J. Heterocycl. Chem. 1997, 34, 27. 5,6-Dimethyl-3-hydroxypyrazine-2-carboxylic acid can be prepared by hydrolysis of the corresponding ethyl ester, the synthesis of which is described by SI Zavyalov and AG Zavozin, Izv. Akad. Of the Sciences of the SSSR, 1980, (5), 1067-1070. 4-Hydroxypyridazine-3-carboxylic acid was prepared by the method of I. Ichimoto, K. Fujii, and C. Tatsumi, Agric. Biol. Chem. 1967, 31, 979. 3,5-Dihydroxy-1,2,4-triazine-6-carboxylic acid was prepared by the method of E. Falco, E. Pappas, and G. Hitchings, J. Am. Chem. Soc, 1956, 78, 1938. 5-Hydroxy-3-methylthio-1,2,4-triazine-6-carboxylic acid was prepared according to the method of R. Barlow and A. Welch, J. Am. Chem. Soc, 1956, 78, 1258. Hydroxyisothiazole-, hydroxyisoxazole- and hydroxypyrazole carboxylic acids were prepared by the method of TM Willson et al., Bioorg. Med. Chem. Lett., 1996, 6, 1043. 3-Hydroxy-1,2,5-thiadiazole-4-carboxylic acid was prepared by the method of JM Ross et al., J. Am. Chem. Soc, 1964, 86, 2861. 3-Hydroxyisoxazole-4-carboxylic acid was prepared according to the procedure described by K. Bowden et al., J. Chem. Soc. (C), 1968, 172. 3-Hydroxy-1-phenylpyrazole-4-carboxylate was prepared according to the method of AW Taylor and RT Cook, Tetrahedron, 1987, 43, 607. 3-Benzyloxyquinoline-2-carboxylic acid was prepared according to the DL Boger procedure and JH Chen, J. Org. Chem. 1995, 60, 7369-7371.
General procedure for the preparation of intermediate amines and anilines.
The synthesis of cyclic, acyclic and benzylamines was carried out by reduction of the corresponding oximes either by using metal hydrides or metal dissolution reaction products as illustrated by RO Hutchins and MK Hutchins in Comprehensive Organic Synthesis; edited by BM Trost; Pergamon Press: Oxford, 1991; Vol. 8, p. 65; or JW Huffman in Comprehensive Organic Synthesis; edited by BM Trost; Pergamon Press: Oxford, 1991; vol. 8, p. 124. Alternatively, these amines can be prepared directly from the corresponding ketones and aldehydes by a Leuckart reaction as reported by R. Carlson, T. Lejon, T. Lunstedt, and E. LeC-Louerec, Acta Chem. Scand. 1993, 47, 1046. Anilines were generally prepared by catalytic reduction of the corresponding nitroaromatic compounds using Pd on carbon or sulfided platinum on carbon as catalysts. Such procedures are well described in e.g. RL Augustine, Catalytic Hydrogenation, Marcel Decker, Inc., New York, 1965.
Amines 49, which are 9-membered dilactone ring systems, were prepared according to the procedures of M. Shimano, N. Kamei, T. Shibata, K. Inoguchi, N. Itoh, T. Ikari, and H. Senda, Tetrahedron, 1998, 54, 12745, or by modifications to these procedures. Such a modification is shown in Scheme 6. Thus, compound 26 (from the reference above) was reduced with lithium borohydride and the resulting primary alcohol was capped with triisopropylsilane (TIPS) to afford compound 27. The free hydroxyl group of 27 was reacted with 1-bromo-2-methyl-2-propene followed by catalytic reduction of the double bond to give compound 28. Selective removal of the parametoxybenzyl (PMB) blocking group followed by condensation with Nt-BOC-O- benzyl-L-serine gave compound 29.
PL 205 059 B1
Removal of the TIPS group followed by oxidation of the resulting hydroxyl group gave compound 30. This material (30) was in turn converted to amine 31 using the procedures described in the reference above.
<img file="PL205059B1_D0017.tif" />
In a similar manner, the syntheses of the aminodilactones 38 and 48, which do not have the function of an exocyclic ester, are shown in Schemes 7 and 8, respectively.
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<img file="PL205059B1_D0018.tif" />
PL 205 059 B1
<img file="PL205059B1_D0019.tif" />
To a solution of lithium borohydride (2.0 M in THF, 7.5 mL, 15 mmol) in 7.5 mL of dry THF was added 0.1 mL of trimethyl borate. This mixture was cooled under nitrogen to -30 ° C. To this solution, a solution of compound 26 (4.58 g, 10 mmol) in 10 mL of THF was added dropwise over 10 minutes. The solution was stirred at -30 ° C for 1 hour, then at 0 ° C for 5 hours. A saturated ammonium chloride solution (10 mL) was added dropwise, the mixture was stirred for 10 minutes, and the phases were separated. The aqueous phase was extracted with EtOAc (2 x 25 mL), and the combined organic phases were washed with saturated brine, dried over sodium sulfate and evaporated to dryness. The crude product was chromatographed to give 2.1 g of a white solid. A sample recrystallized from hexane-EtOAc gave fine white needles, mp 91-93 ° C. [a] D<sup>25</sup> = + 31.9 ° (C = 1.04, CHCl<sub>3</sub>). This diol (2.04 g, 6.22 mmol) was dissolved in 4 mL of dry DMF and imidazole (680 mg, 10 mmol) was added. The solution was cooled in an ice bath then triisopropylchlorosilane (1.39 mL, 6.5 mmol) was added over 2 minutes. The mixture was stirred at room temperature for 4 hours, then poured out into ice water, and extracted with 20% ether in hexanes (3 x 15 mL). The combined organic phases were washed with brine, dried and filtered through a short plug of silica gel which was washed with 20 ml of the same solvent. The solvent was evaporated to give 2.77 g of compound 27 as pale sticky which was very pure according to<sup>1</sup>H-NMR.
Preparation of compound 28 (see scheme 6).
Sodium hydride (60% oil dispersion, 400 mg, 10 mmol) was charged to a 50 mL flask and washed three times with hexanes. DMF (15 mL) was added and the suspension was stirred while compound 27 (2.53 g, 5.19 mmol) in 5 mL of dry DMF was added dropwise over 15 minutes. The mixture was stirred for 15 minutes, then cooled to below 10 ° C and 1-bromo-2-methyl-2-propene (1 mL, 10 mmol) was added over 5 minutes, followed by stirring for 2 hours at room temperature. The mixture was partitioned with hexanes / ice cold ammonium chloride, processed as in compound preparation
PL 205 059 B1
27, and the crude product was chromatographed to give 2.20 g of a colorless oil which was pure according to <sup>1</sup>H-NMR and elemental analysis. This material (2.38 g, 4.4 mmol) was dissolved in 50 mL of EtOAc in a 100 mL Morton flask under nitrogen. 150 mg of 5% Pt on carbon was added and the mixture was stirred under 1 atmosphere of hydrogen for 20 minutes. The catalyst was removed by filtration and the solvent was evaporated to give 2.35 g of compound 28 as a colorless oil which was pure according to<sup>1</sup>H-MNR.
Preparation of compound 29 (see scheme 6).
A solution of ether 28 (2.0 g, 3.68 mmol) in 40 mL of CH2Cl2 and 2 mL of water was added to a 50 mL flask equipped with a magnetic stirrer. It was stirred under nitrogen and cooled in an ice bath at <10 ° C by the addition of 2,3-dichloro-5,6-dicyano-1,4-benzoquinone (DDQ) (920 mg, 4.05 mmol) in one portion. The ice bath was removed and the mixture was stirred for 1 hour at room temperature. The golden suspension was filtered under vacuum, the cake was washed with 2 x 10 mL CH2Cl2, and the filtrates were extracted with 0.2N NaOH (2 x 25 mL). The organic layer was dried and concentrated to a pale oil which was purified by chromatography to give 1.53 g of a colorless oil which was pure by elemental analysis. This was dissolved in 25 mL CH2Cl2 and stirred in an ice bath under nitrogen, sequentially adding DMAP (854 mg, 7 mmol), EDCI (1.34 g, 7 mmol), and Nt-BOC-O-benzyl-L-serine (2 , 07 g, 7 mmol). The cooling bath was removed and the mixture was stirred for 2 hours at room temperature. It was then poured into a vigorously stirred mixture of 50 ml of ice cold 0.5 N HCl and 20 ml of CH2Cl2 and stirred for 10 minutes. The phases were separated and the aqueous phase was extracted with 1 x 10 ml of CH2Cl2; then, the combined organic phases were dried and concentrated to give a pale oil. It was chromatographed to provide 2.30 g of compound 29 as an almost colorless thick oil. TLC and<sup>1</sup>H-MNR indicated quite high purity.
Preparation of 30 (see scheme 6).
The silyl ether 29 was dissolved in 7 ml of dry pyridine and cooled in an ice bath. HF-pyridine complex (4.5 ml) was added over 1 minute and the solution was stirred at room temperature for 17 hours, then heated to 50 ° C for 4.5 hours, by which time conversion stopped. The mixture was poured into ice-water and extracted with 3 x 50 ml of ether. The combined organic phases were washed with water, 1 N HCl then dried and concentrated to an oil. It was chromatographed to give 1.23 g of the desired alcohol as a viscous oil and 365 mg of recovered compound 29. The alcohol (1.14 g, 2.10 mmol) was dissolved in 10 mL of DMF and pyridinium dichromate (3.76 g, 10 mg) was added. mmoles). After 21 hours, the mixture was poured into ice / water, 1 N HCl was added until the pH was below 3, and then solid sodium bisulfite until the orange color disappeared. The aqueous phase was extracted with ether (3 x 50 ml). The organics were combined, washed, dried (Na2SO4), and concentrated. The residue was chromatographed to give 811 mg of viscous oil which was pure enough. The acid was dissolved in 30 mL of EtOAc and 200 mg of Pearlman's catalyst was added. The slurry was shaken under 50 psi hydrogen pressure for 4 hours, 300 mg of fresh catalyst was added and shaken for 2 hours. It was then filtered and the solvent evaporated to give compound 30 as a sticky gum which was pure enough for further use.
Threoninoditian 33 (see diagram 7).
Pentyldithian 32 (Hirai, Heterocycles 1990, 30 (2nd Special Ed.), 1101) (200 mg, 0.97 mmol) was dissolved in 10 mL of CH2Cl2 at room temperature. N- (Z) -Ot-Butyl- (L) -treonine (900 mg, 2.91 mmol) was added followed by DMAP (36 mg, 0.29 mmol). To this mixture, a solution of dicyclohexylcarbodiimide (DCC) (1M in CH2Cl2, 2.9 mL, 2.9 mmol) was added dropwise, followed by stirring at room temperature overnight. The mixture was diluted with 50 mL of ether (Et2O), filtered and concentrated. The resulting residue was applied to a small (4) silica gel gravity column and eluted with 4: 1 hexanes / EtOAc. The eluent collected from the silica gel column was then purified by radial chromatography using 4: 1 hexanes / EtOAc as eluent. Product fractions were evaporated and kept under high vacuum (45 ° C at 0.1 Tr) to constant weight, yielding 500 mg of almost colorless heavy oil, identified as dithian 33 (TLC Rf = 0.32,<sup>1</sup>H-NMR).
Threoninecarboxylic acid 35 (see scheme 7).
Threoninoditrate 33 (500 mg, 1.01 mmol) was dissolved in 10 mL of 9: 1 CH 3 CN / H 2 O at room temperature. [Bis (trifluoroacetoxy) iodo] benzene (650 mg, 1.50 mmol) was added and the mixture was stirred for 10 minutes. Saturated NaHCO3 (20 mL) was added and the solution was extracted with Et2O (3 x 20 mL). The ether layer was dried over MgSO4, filtered and concentrated. Aldehyde 34 was pure enough (TLC, GC / MS) to be used directly in the next reaction. The crude aldehyde was dissolved in 15 mL (4.95 mmol) of CrO3 reagent (made from 1 g CrO3, 30 mL CH3CO2H and 1 mL of pyridine) and stirred at room temperature overnight. The solution was diluted with 30 mL of cold water and extracted with Et2O
PL 205 059 B1 (3 x 30 ml). The organic layer was washed with 30 mL of brine, dried over MgSO4, filtered, and concentrated. The residue was purified by radial chromatography using 2: 1 heptane / EtOAc containing 2% CH3CO2H as eluent. The carboxylic acid 35 (120 mg) was sufficiently pure by TLC i<sup>1</sup>H-MNR.
Threonine hydroxycarboxylic acid 36 (see scheme 7).
The threoninecarboxylic acid 35 (137 mg, 0.324 mmol) was stirred in 3 mL of trifluoroacetic acid for 10 minutes and the mixture was concentrated on the rotary evaporator. The residue was dried under high vacuum (0.05 mm) overnight. The hydroxy acid 36 (119 mg) was used directly in the next step.
N-Cbz-threoninobislactone 37 (see scheme 7).
Threonine hydroxycarboxylic acid 36 (119 mg, 0.324 mmol) was dissolved in 1 ml of benzene and Aldrithiol-2 (85 mg, 0.39 mmol) was added followed by triphenylphosphine (0.39 mmol, 101 mg) and the mixture was stirred overnight. The crude thioester was diluted with 15 mL of CH3CN. A separate flask equipped with a cooler was charged with 1.2 mL (1.16 mmol) of a 1.0 M AgClO4 solution in toluene, then with 32 mL of CH3CN. This solution was heated to a reflux rate of 5-10 drops per second (oil bath ~ 160 ° C). The thioester solution was then added dropwise via an addition funnel at the top of the condenser over 2 hours. The mixture was refluxed for an additional 30 minutes, cooled and concentrated. The residue was diluted with 10 ml of 0.5 M KCN and extracted with benzene (3 x 20 ml). The benzene layers were combined, washed with 20 mL of water, dried over MgSO4, filtered and concentrated. The residue was then dissolved in 10 ml of 2: 1 pentane / Et2O and filtered. The solids were washed with 2: 1 pentane / Et2O and the combined organic solution was concentrated. Radial chromatography (2: 1 pentane / Et2O as eluant) gave 34 mg of the bis-lactone 37, quite pure by TLC (Rf = 0.22) and<sup>1</sup>H-MNR.
3-Amino-4,7,9-trimethylbislactone (38) (see scheme 7).
N-Cbz-threonine bislactone 37 (34 mg, 0.097 mmol) was dissolved in 10 mL of methanol in a 500 mL Parr bottle and purged with nitrogen. To this solution was added 10 mg of Pd (black) and the mixture was shaken under a hydrogen pressure of 310.3 kPa (45 psi) for 1 hour. The catalyst was filtered and the solvent evaporated to afford free amine 38 (20 mg, 100%). This amine was fairly pure (<sup>1</sup>H-MNR) and was used as is without further purification.
3-Benzyl-4-hydroxy-5-methylobutyrolactone (40) (see scheme 8).
Pentanoic acid 39 (Shimano et al., Tetrahedron Lett. 1998, 39, 4363) (1.8 g, 5.23 mmol) was dissolved in 30 mL of methanol in a 500 mL Parr bottle and purged with nitrogen. To this solution was added 150 mg of 10% Pd on carbon followed by 6 drops of concentrated HCl. The mixture was shaken under 50 psi hydrogen pressure for 3 hours. The catalyst was filtered through diatomaceous earth and the solution concentrated. The residue was dissolved in 30 ml of CH2Cl2 and washed with water (1 x 10 ml). The solution was dried over MgSO4, filtered and concentrated. <sup>1</sup>H-MNR and GC / MS of the crude product revealed the expected butyrolactone 40 and 4-methylanisole in a ratio of 4: 1 (v / v). This material (60% pure by GC) was used directly in the next reaction.
3-Benzyl-5-methylbutenolide 41 (see scheme 8).
3-Benzyl-4-hydroxy-5-methylbutyrolactone 40 (60% pure, 1.7 g, 8.25 mmol), dissolved in 25 mL CH2Cl2 and cooled to 0 ° C. The solution was stirred and triethylamine (2.3 mL, 16.5 mmol), DMAP (500 mg, 4.13 mmol) and p-toluenesulfonyl chloride (9.0 mmol, 1.7 g) were added sequentially. The reaction mixture was warmed to room temperature and stirred for 30 hours. The mixture was diluted with 50 mL of Et2O and washed with 5% NaHCO3 (25 mL). The solution was dried over MgSO4, filtered and concentrated. The residue was purified by radial chromatography, eluting with 2: 1 pentane / Et2O, yielding 677 mg of butenolide 41 (> 95% purity by GC and <sup>1</sup>H-MNR).
cis-3-Benzyl-5-methylbutyrolactone 42 (see scheme 8).
3-Benzyl-5-methylbutenolide 41 (677 mg, 3.60 mmol) was dissolved in 30 mL of EtOAc in a 500 mL Parr bottle and purged with nitrogen. To this solution was added 300 mg of 10% Pd / C and the mixture was shaken under a hydrogen pressure of 310.3 kPa (45 psi) overnight. The catalyst was filtered off and the solvent was evaporated. The residue was purified by radial chromatography using 2: 1 pentane / Et2O as eluent to give 484 mg of a colorless oil (yield 71% pure according to<sup>1</sup>H-NMR in CDCl3 and GC).
2-Benzylpentyldithian 43 (see scheme 8).
Cis-3-benzyl-5-methylbutyrolactone 42 (550 mg, 2.89 mmol) was dissolved in 15 mL of Et2O and cooled to -78 ° C. Diisobutylaluminum hydride (1.0 M in hexanes, 3.47 mmol, 3.5 mL) was added dropwise and the solution was stirred at -78 ° C for 2 hours. Methanol (3.3 ml) was added over 15 minutes
And the mixture was stirred at -78 ° C for an additional 30 minutes. Sodium potassium tartrate (1.65 g in 5 ml water) was added and the reaction mixture was allowed to warm to room temperature and stirred overnight. The layers were separated and the aqueous layer was extracted with Et2O (2 x 10 mL). The combined ether layers were washed with saturated NaHCO3 and brine (1 x 10 mL). The solution was dried over MgSO4, filtered and concentrated. The crude lactol (555 mg) was dissolved in 5 mL of CH 2 Cl 2 and cooled to 0 ° C. 1,3-Propanedithiol (3.46 mmol, 0.35 mL) was added followed by 0.37 mL (2.89 mmol) boron trifluoride etherate. The reaction mixture was allowed to warm to room temperature and stirred overnight. Saturated NaHCO3 (20 ml) was added and the mixture was stirred for 1 hour. The layers were separated and the aqueous layer was extracted with CH2Cl2 (2 x 10 mL). The combined organic layers were washed with brine (1 x 20 mL), dried over MgSO4, filtered, and concentrated. The residue was purified by radial chromatography using 3: 1 hexane / EtOAc as eluent to give 560 mg of a yellow oil (yield 69% pure according to <sup>1</sup>H-MNR and GC) identified as dithian 43.
Serinoditian 44 (see diagram 8).
2-Benzylpentyldithian 43 (560mg, 1.99mmol) was dissolved in 5ml of DMF and cooled to 0 & lt; 0 & gt; C. DMAP (0.29 mmol, 36 mg) was added followed by EDCI, (0.57 g, 2.98 mmol). Nt-BOC-O-benzyl- (L) -serine (760 mg, 2.58 mmol) was then added and warmed to room temperature and stirred at room temperature overnight. The reaction mixture was poured into a vigorously stirred mixture of 10 mL of ice cold 0.5 N HCl and 20 mL of 20% ether / hexanes and stirred for 10 minutes. The layers were separated and the aqueous layer was extracted with 20% ether / hexanes (1 x 10 mL). The combined organic layers were washed with 0.5 N HCl (20 ml) and brine (2 x 20 ml). The solution was dried over MgSO4, filtered and concentrated. The resulting residue was kept under high vacuum (45 ° C at 0.1 Tr) until constant weight, yielding 1.06 g of almost colorless heavy oil, identified as dithian 44 (TLC Rf = 0.3, 3: 1 hexanes / EtOAc) .
Nt-BOC-O-Benzylserine carboxylic acid 45 (see scheme 8).
Serinodithian 44 (1.06 g, 1.90 mmol) was dissolved in 20 mL of 9: 1 CH 3 CN / H 2 O at room temperature. [Bis (trifluoroacetoxy) iodo] benzene (1.2 g, 2.82 mmol) was added and the mixture was stirred for 10 minutes. Saturated NaHCO3 (40 ml) was added and the solution was extracted with Et2O (3 x 40 ml). The ether layer was dried over MgSO4, filtered and concentrated. The aldehyde was sufficiently pure (TLC, GC / MS,<sup>1</sup>H-NMR) for use directly in the next reaction. The crude aldehyde was dissolved in 30 mL (9.70 mmol) of CrO3 reagent (made from 1 g CrO3, 30 mL CH3CO2H and 1 mL of pyridine) and stirred at room temperature overnight. The solution was diluted with 60 mL of cold water and extracted with Et2O (3 x 60 mL). The organic layer was washed with 2 x 60 mL of brine, dried over MgSO4, filtered and concentrated. The residue was dissolved in 100 ml of 2: 1 heptane / EtOAc and evaporated. The residue was purified by radial chromatography using 1.5: 1 heptane / EtOAc containing 2% CH3CO2H as eluent. The carboxylic acid (536 mg) appeared fairly pure by TLC i<sup>1</sup>H-NMR with two t-BOC rotamers visible in CDCl3 but not in acetone-d6.
Nt-BOC-SerinobisIakton 47 (see diagram 8).
Nt-BOC-O-benzylserine carboxylic acid 45 (536 mg, 1.11 mmol) was dissolved in 15 mL of EtOAc in a 500 mL Parr bottle and purged with nitrogen. To this solution was added 390 mg of 10% Pd / C and the mixture was shaken under 50 psi hydrogen pressure for 17 hours. The catalyst was filtered through diatomaceous earth and the solvent was evaporated to give the hydroxy acid 46 (440 mg). The crude hydroxy acid 46 was dissolved in 23 mL of benzene and triphenylphosphine (0.34 g, 1.28 mmol) was added at room temperature. Diisopropyl azodicarboxylate (DIAD, 0.25 mL, 1.28 mmol) was added dropwise and the mixture was stirred at room temperature overnight. The solution was concentrated and the resulting residue was applied to a small (4 inch) gravity column and eluted with 2: 1 hexanes / EtOAc. The eluent from the silica gel column was then purified by radial chromatography using 2: 1 pentane / ether as eluent. Product fractions were evaporated to yield 132 mg of a yellow oil identified as Nt-BOC-serine bislactone 47 (TLC Rf = 0.32, fairly pure according to <sup>1</sup>H-NMR).
3-Amino-7-benzyl-9-methylbislactone 48 (see scheme 8).
Nt-BOC-serine bislactone 47 (132 mg, 0.35 mmol) was stirred in 3 mL of trifluoroacetic acid for 30 minutes and the reaction mixture was concentrated by rotary evaporation. The residue was dried under high vacuum (0.05 mm) overnight. The trifluoroacetic acid amine salt 48 (0.35 mmol) was quite pure according to<sup>1</sup>H-NMR and was used as is without further purification.
PL 205 059 B1
3- (3-Chlorophenoxy) aniline.
<img file="PL205059B1_D0020.tif" />
3-Chlorophenol (12.86 g) was added at once to a stirred solution of potassium t-butoxide (12.3 g) in DMSO (100 ml). The resulting solution was stirred for 5 minutes at room temperature, then 3-fluoronitrobenzene (12.70 g) was added in one portion. The resulting dark mixture was heated at 120 ° C for 12 hours, cooled to room temperature then poured into water (700 mL). The resulting mixture was extracted with ether (2 x 200 ml). The organic fraction was washed with 2N NaOH (100 ml) then with water (100 ml). After drying (MgSO4), the solvent was evaporated and the resulting dark oil was distilled to give 3- (3-chlorophenoxy) nitrobenzene as a yellow oil, bp 135-140 ° C at 0.05mm.
A mixture of 3- (3-chlorophenoxy) nitrobenzene (14 g) and 5% Pt on sulfided carbon (1.25 g) in EtOAc (150 ml) was subjected to a hydrogen atmosphere (initial pressure = 344.7 kPa (50 psi) )) on a Parr shaker. After 4 hours, the mixture was thoroughly degassed (hydrogen replaced with nitrogen), dried (MgSO4), and filtered (Whatman # 50 paper). The solvent was evaporated to give a pale yellow oil (12 g) which was> 96% pure by GC.<sup>1</sup>H-NMR (CDCl3) and GC / MS (m / e = 219, 221) were consistent with 3- (3-chlorophenoxy) aniline.
3- (4-Trifluoromethylphenoxy) aniline.
<img file="PL205059B1_D0021.tif" />
To a mixed solution of 3-hydroxyaniline (6.55 g) and 4-fluorobenzotrifluoride (9.85 g) in DMSO (50 ml) was added potassium t-butoxide (7.86 g) in one portion. The resulting dark solution was heated for 4 hours at 95 ° C, cooled to room temperature then poured into water (600 ml). The mixture was extracted with ether (3 x 125 ml). The organic phase was washed with 2 N sodium hydroxide (2 x 75 ml) and water (100 ml), dried (MgSO4) and the solvent was evaporated to give a dark oil. This oil was distilled to give the title aniline as a colorless oil (8.7 g), bp 110-112 ° C at 0.15 mm.
4- (4-Trifluoromethylphenylotio) aniline.
<img file="PL205059B1_D0022.tif" />
To a mixed solution of 4-fluoro-1-trifluoromethylbenzene (9.85 g) and 4-aminothiophenol (7.51 g) in DMSO (60 ml) cooled in an ice bath, potassium t-butoxide was added in one portion (6.73 g). The resulting mixture was stirred at 0 ° C for 10 minutes then at 60 ° C overnight. After cooling, the mixture was poured into water (600 ml) and the resulting mixture was extracted with ether (2 x 200 ml). The organic phase was washed with 2N sodium hydroxide (50 ml) then with water (50 ml). After drying (MgSO4), the solvent was evaporated to give a brown solid. Recrystallization from hexane gave the title aniline as a yellow solid, mp 97-99 ° C.
4- (3-Trifluoromethylbenzyl) aniline.
<img file="PL205059B1_D0023.tif" />
The Grignard reagent was prepared by adding a solution of 4-bromo-N , N-bis- (trimethylsilyl) aniline (9.48 g) in dry THF (75 ml) to a stirred mixture of magnesium turnings (1.09 g) in dry THF (10 ml ). A second catalyst solution, Li2CuCl4 (0.33 g), was prepared by adding CuCl2 (0.20 g) and LiCl (0.13 g) to dry THF (25 mL) and stirring until a homogeneous solution was obtained. This catalyst solution to 20
The mixture was then added to a solution of 3-trifluoromethylbenzyl bromide (7.17 g) in dry THF (75 ml). The orange-red solution was cooled in an ice bath (N2 atmosphere) and the above Grignard solution (previously cooled in an ice bath) was quickly transferred into it via cannula. After stirring for 15 minutes at 0 ° C, the mixture was stirred overnight at room temperature. The reaction mixture was quenched by the addition of saturated NH4Cl solution (25 mL). The organic phase was separated, dried (MgSO4) and the solvent was evaporated to give a dark oil (11 g). To this oil, 4 N HCl (50 mL) was added, and the resulting mixture was stirred at room temperature for 3 hours. The mixture was basified by careful addition of solid sodium carbonate then extracted with ether (3 x 100 mL). The organic phase was dried (MgSO4) and the solvent was evaporated. EtOAc (100 ml) was added and the solution decanted from the insoluble material. The solvent was evaporated again and the residue was chromatographed (silica gel, 3: 1 hexane / EtOAc). The second eluate was collected to give an orange oil which darkened rapidly. NMR (CDCl3) and GC / MS (m / e = 251) were consistent with the title compound. This material was converted to the HCl salt to give a brown solid.
4- (3-Trifluoromethylbenzoyl) aniline.
<img file="PL205059B1_D0024.tif" />
A mixed solution of 4-bromo-N, N-bis- (trimethylsilyl) aniline (9.24 g) in dry THF (100 ml) was cooled to -78 ° C under argon. To it, a 2.5 M solution of n-butyllithium in hexane (12 ml) was slowly added. After the addition was complete, the reaction mixture was stirred at -78 ° C for 10 minutes, then a solution of N-methyl-N-methoxy-3-trifluoromethylbenzamide (6.8 g) in dry THF (25 ml) was added dropwise. After the addition was complete, the mixture was stirred at -78 ° C for an hour, then the cooling bath was removed and the reaction was allowed to warm to 10 ° C. Quench the reaction by adding saturated NH4Cl solution (50 mL) followed by water (10 mL). The organic phase was separated, dried (MgSO4) and the solvent evaporated to give a yellow liquid (12 g). This was dissolved in ether (100 ml) and 4N HCl (100 ml) was added. The resulting mixture was stirred for 30 minutes at room temperature during which time a solid separated. This solid was filtered, washed with several portions of ether then carefully added to a stirred saturated solution of NaHCO3 (100 mL). The resulting mixture was extracted with ether (2 x 100 ml), the organic phase was dried with MgSO4 and the solvent was evaporated to give a yellow-white solid (5.7 g). Recrystallization from methanol / water gave a white solid, mp 130-131 ° C. The spectral data was consistent with the title compound.
Ethyl 2-amino-5- (4-trifluoromethylphenoxy) benzoate.
<img file="PL205059B1_D0025.tif" />
5-Hydroxyanthranilic acid (10.2 g) was added in one portion to a mechanically stirred solution of potassium t-butoxide (15.71 g) in DMSO (75 ml). The mixture was stirred at room temperature under argon for 10 minutes, then 4-fluoro-1-trifluoromethylbenzene (11.16 g) was added and the resulting mixture was stirred and heated at 75-80 ° C overnight. After cooling, the mixture was poured into water (600 ml) and the pH was adjusted to approximately 2.5. The resulting solid was filtered, washed with several portions of water, then recrystallized from methanol / water (with charcoal) to give a tan solid (13.5 g), mp 165-167 ° C. This solid was dissolved in anhydrous ethanol (250 ml) and concentrated sulfuric acid (15 ml) was carefully added. The resulting mixture was refluxed for 24 hours, then most of the ethanol was evaporated. The residue was carefully added to ice-water (600 ml), the resulting mixture basified by the slow addition of 50% NaOH solution, then extracted with ether (2 x 150 ml). The organic phase was washed with water (100 ml) then with saturated NaCl solution (50 ml). After drying (MgSO4), the solvent was evaporated to give a yellow oil with a purity of about 98% by GC. GC / MS indicated the parent ion m / e = 325, which is consistent with the title compound.
2-Aminobenzonorbornane.
<img file="PL205059B1_D0026.tif" />
To a stirred solution of benzonorbornene (2.84 g) in dry THF (8 ml) cooled to 0 ° C under argon was added quickly a 1M solution of borane in THF (6.7 ml). The solution was stirred for 10 minutes at 0 ° C, then at room temperature for 90 minutes. The reaction mixture was re-cooled to 0 ° C and hydroxylamino-O-sulfonic acid (1.58 g) was added in one portion. The ice bath was removed and the reaction mixture was stirred at room temperature for 2 hours. 1 N HCl (25 ml) and ether (20 ml) were added and stirring was continued for 10 minutes. The phases were separated and the organic phase was discarded. The aqueous phase was made basic by the careful addition of 50% NaOH solution, then extracted with ether (3 x 30 ml). The organic phase was dried (MgSO4) and the solvent evaporated to give a yellow liquid (1.35 g) which was 98% pure as judged by GC.<sup>1</sup>H-NMR (CDCl3) and GC / MS (m / e = 159) were consistent with the title compound.
<img file="PL205059B1_D0027.tif" />
Preparation of a mixture of (3-trifluoromethylbenzyloxymethyl) -norbonylamines 53.
The preparation of this mixture is illustrated in Scheme 9. Thus, a mixture of exo-endo-norbornene carboxylic acids 49 (ratio -1: 4) (7.0 g), 2-iodopropane (12.8 g) and potassium carbonate (10.4 g) in DMSO (40 mL) was stirred and heated at 55 ° C overnight. After cooling, the mixture was diluted with water (125 ml) then extracted with pentane. The organic phase was dried (MgSO4) and the solvent was evaporated to give a colorless oil (8.2 g). This oil was added to a solution of sodium 2-propoxide (3.6 g) in 2-propanol (100 ml) and the resulting mixture was heated under reflux for 16 hours. Removal of 2-propanol, dilution with water (200 ml) and extraction with pentane gave norbornene isopropyl ester 50 as a 52:48 exo to endo mixture. They were separated into pure isomers by chromatography (silica gel, 95: 5 hexane / EtOAc). The exo isomer of compound 50 (4.0 g) was dissolved in ether (50 ml), cooled to 0 ° C and a 1 M solution of lithium aluminum hydride in ether (14 ml) was slowly added. After the addition was complete, the mixture was heated at reflux for one hour. After cooling, the reaction was quenched by sequential addition of water (0.53 mL), 15% NaOH solution (0.53 mL), then water (1.59 mL). The resulting mixture was dried (MgSO4), filtered, and the solvent was evaporated to give exo-alcohol 51 (2.7 g) as a colorless liquid. The GC / MS (m / e = 124) was consistent with the assigned structure.
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To a stirred mixture of potassium hydride (1.0 g) in dry THF (25 ml) was carefully added a solution of compound 51 (2.7 g) in THF (10 ml). After the addition was complete, the mixture was stirred at room temperature for 30 minutes, then 3-trifluoromethylbenzyl bromide (5.98 g) was added in one portion (exothermic reaction). The reaction mixture was refluxed for 2 hours, cooled, then poured into water (150 ml). Extraction with ether (2 x 75 ml), drying (MgSO4) and evaporation of the solvent gave a yellow oil which was purified by chromatography (silica gel, 97: 3 hexane / acetone) to give pure 52 as a colorless oil (5.2 g). NMR (CDCl3) and GC / MS (m / e = 282) were consistent with structure 52.
Conversion of compound 52 to the diastereomeric mixture of amines 53 was performed using the borane / hydroxylamino-O-sulfonic acid procedure previously described (20% yield).
3- (3-Pyridyl) -1-propanamine.
<img file="PL205059B1_D0028.tif" />
This amine was obtained by first converting 3- (3-pyridyl) -1-propanol to the corresponding chloride according to the procedure of B. Jursica et al., Synthesis, 1988, (11), 868, then converting the chloride to the amine according to the procedure of DJ Dumas et al. ., J. Org. Chem., 1988, 53, 4650.
3 - [[5- (Trifluoromethyl) -2-pyridyl] oxy] -1-propanamine.
<img file="PL205059B1_D0029.tif" />
2-Fluoro-5-trifluoromethylpyridine (1.831 g, 11 mmol) was dissolved in anhydrous THF (15 mL) with stirring under nitrogen and cooled to 0 ° C in an ice bath. To it was added dropwise over 30 minutes a solution of 3-amino-1-propanol (0.76 ml, 10 mmol) in anhydrous THF (15 ml) and 1M potassium t-butoxide in THF (10 ml, 10 mmol). The yellow solution was allowed to stir and warm to room temperature in an ice bath overnight. The reaction mixture was poured into water (75 ml) and extracted with ether (2 x 50 ml). The organic phase was washed with brine (50 ml), dried (Na2SO4), filtered and evaporated in vacuo to a yellow liquid which was almost pure by NMR and MS and used as is without further purification.
(+) - trans-1-hydroxy-2-aminocyclopentane hydrobromide.
<img file="PL205059B1_D0030.tif" />
(±) -trans-1-benzyloxy-2-aminocyclopentane hydrobromide (8.2 g, 42.8 mmol) was treated with 40% HBr (60 ml). After stirring for 3 days, the solution was concentrated under reduced pressure to give 7.09 g (91%) of the hydrobromide salt as an orange solid which was pure as per<sup>1</sup>H-NMR (DMSO-d6).
2,3-Dihydro-2,2-dimethyl-1H-inden-1-amine.
<img file="PL205059B1_D0031.tif" />
This amine was prepared according to the procedure described in the international patent application WO 9927783.
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<img file="PL205059B1_D0032.tif" />
This compound was prepared as shown in Scheme 10. Thus, aluminum chloride (700 mg, 5.2 mmol) was added to a solution of 2-cyclohexen-1-one (2.0 g, 20.8 mmol) in toluene (200 mL). After 40 minutes, freshly distilled cyclopentadiene (13.7 g, 208 mmol) was added and heated to 100 ° C for 2 hours. After cooling, the mixture was diluted with Et2O (300 mL) and washed with saturated NaHCO3 (2 x 150 mL) and brine (100 mL). The combined organic layers were dried (MgSO4), filtered and concentrated. The residue was purified by flash chromatography using 50: 1 hexanes: Et2O as eluent to give the endo (1.74 g) and exo (943 mg) isomers 2,5-methanobicyclo [4.4.0] dec-3-en-10 -on (54) which were pure according to <sup>1</sup>H-NMR and GC / MS.
To a solution of endo-2,5-methanobicyclo [4.4.1] dec-3-en-10-one (54) (1.61 g, 9.9 mmol) and hydroxylamine hydrochloride (758 mg, 10.9 mmol) in methanol (33 ml) was added portionwise with sodium acetate (1.79 g, 21.8 mmol) and stirred overnight at room temperature. The reaction was quenched with H 2 O and extracted with ether (2 x 50 mL). The combined organic layers were dried (MgSO4), filtered and concentrated to give endo-2,5-methanobicyclo [4.4.0] dec-3-en-10-one oxime (55) as a pasty residue, pure according to<sup>1</sup>H-NMR and GC / MS.
Endo-2,5-methanobicyclo [4.4.1] dec-3-en-10-one oxime (55) (500 mg, 2.79 mmol) was dissolved in EtOAc (25 ml) and 10% Pd / C (50 mg). After 3 hours under 40 psi of H 2, the slurry was filtered through Celite® and concentrated. The resulting residue was dissolved in EtOH (25 mL) and charged with Raney® nickel (1.0 g). The slurry was saturated with NH3 and subjected to an H2 pressure of 310.3 kpa (45 psi). After 6 hours, the slurry was filtered through Celite®, diluted with EtOAc (100 mL), and washed with saturated NaHCO3 (100 mL). The combined organic layers were dried over MgSO4, filtered and concentrated.<sup>1</sup>H-NMR and GC / MS revealed the title amine 56 as a 2: 1 mixture of diastereomers
<img file="PL205059B1_D0033.tif" />
10-Amino-4- (4'-methylpent-3'-enyl) -bicyclo [4.4.0] dec-3-ene (59).
The preparation of this compound was carried out as shown in Scheme 11. Thus, aluminum chloride (700 mg, 5.2 mmol) was added to a solution of 2-cyclohexen-1-one (2.0 g, 20.8 mmol) in toluene (100 ml). ). After 40 minutes, myrcene (17 g, 125 mmol) was added and heated to 100 ° C for 2 hours. After cooling, the mixture was diluted with Et2O (300 mL) and washed with saturated NaHCO3 (2 x 150 mL) and brine (100 mL). The combined organic layers were dried over MgSO4, filtered and concentrated. The residue was purified by flash chromatography using 50: 1 hexanes: Et2O as eluent to give 4- (4'-methylpent-3'-enyl) bicyclo [4.4.0] dec-3-en-10-one (57) (2.55 g) which was pure according to <sup>1</sup>H-NMR and GC / MS.
To a solution of 4- (4'-methylpent-3'-enyl) -bicyclo [4.4.0] dec-3-en-10-one (57) (2.23 g, 9.6 mmol) and hydroxylamine hydrochloride (733 mg, 10.5 mmol) in methanol (32 ml) was added portionwise of sodium acetate (1.73 g, 21 mmol) and stirred overnight at room temperature. The reaction was quenched with H 2 O and extracted with ether (2 x 50 mL). The combined organic layers were dried over MgSO4, filtered and concentrated. This gave 4- (4'-methylpent-3'-enyl) -bicyclo [4.4.0] dec-3-en-10-one oxime (58) as a pasty residue, pure according to <sup>1</sup>H-NMR and GC / MS.
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4- (4'-methylpent-3'-enyl) -bicyclo [4.4.0] dec-3-en-10-one oxime (600 mg, 2.42 mmol) was dissolved in EtOH (25 mL) and Raney nickel was introduced 'a® (1.0 g). The slurry was saturated with NH3 and subjected to an H2 pressure of 310.3 kPa (45 psi). After 6 hours, the suspension was filtered through Celite®, diluted with EtOAc (100 mL), and washed with saturated NaHCO3 (100 mL). The combined organic layers were dried over MgSO4, filtered and concentrated.<sup>1</sup>H-NMR and GC / MS indicated pure title amine (550 mg).
<img file="PL205059B1_D0034.tif" />
2-Amino-7-furyl-3-methyl-4-chromanone hydrochloride (63).
This amine hydrochloride was prepared as shown in Scheme 12. Thus, 7-trifluoromethanesulfonate-3-methyl-4-chromanone (3.0 g, 9.7 mmol) (prepared according to the procedure of K. Koch, and MS Biggers, J. Org. Chem. 1994, 59, 1216) was added to the solution of 2- (tributylstannyl) furan (3.79 g, 10.6 mmol), Pd (PPh3) 4 (223 mg, 0.19 mmol), LiCl (1, 23 g, 29.0 mmol), and two crystals of 2,6-di-t-butyl-4-methylphenol in 1,4-dioxane (50 mL), and heated to reflux for 12 hours. After cooling, the mixture was quenched with saturated NH4Cl (40 mL) and extracted with Et2O (2 x 50 mL). The combined organic layers were dried over MgSO4, filtered and concentrated. The residue was purified by flash chromatography using 20: 1 hexanes: EtOAc as eluent to give 7-furyl-3-methyl-4-chromanone (60) (1.78 g) as a yellow solid, mp 94-95 ° C. C.
Sodium acetate (395 mg) was added portionwise to a solution of 7-furyl-3-methyl-4-chromanone (60) (500 mg, 2.19 mmol) and hydroxylamine hydrochloride (167 mg, 2.41 mmol) in methanol (5 ml). , 4.82 mmol) and stirred overnight at room temperature. The reaction was quenched with H 2 O and extracted with ether (2 x 25 mL). The combined organic layers were dried over MgSO4, filtered and concentrated to give 7-furyl-3-methyl-4-chromanone oxime (61) as a white solid, mp 175-177 ° C.
Toluenesulfonyl chloride (397 mg, 2.08 mmol) was added at 0 ° C to a solution of 7-furyl-3-methyl-4-chromanone oxime (61) (461 mg, 1.89 mmol) and pyridine (0.5 ml ) in CH2Cl2 (10 ml). After 6 hours, the mixture was diluted with CH2Cl2 (30 mL) and washed with 5% HCl (20 mL). The organic layer was dried over MgSO4, filtered and concentrated. The residue was purified by flash chromatography using 5: 1 hexanes: EtOAc as eluent to afford 7-furyl-3-methyl-4-chromanone O- (toluenesulfonyl) oxime (62) (429 mg) as a pink solid. mp 163-164 ° C (with decomposition).
To a stirred solution of 7-furyl-3-methyl-4-chromanone O- (toluenesulfonyl) oxime (62) (410 mg, 1.0 mmol) in benzene (4 mL) was added ethanolic sodium ethoxide (0.35 mL, 2.87 M, 1.0 mmol). After 18 hours, 3N HCl (6 ml) was added and the layers were separated. The organic phase was then extracted with 3N HCl (2 x 10 mL) and the combined aqueous extracts concentrated to give the crude title compound 63 as an orange solid (388 mg) which was used as is.
<img file="PL205059B1_D0035.tif" />
2-Amino-7- (3'-methoxypropynyl) -3-methyl-4-chromanone hydrochloride (65).
This amine hydrochloride was prepared as shown in Scheme 13. Thus, 7-trifluoromethanesulfonate-3-methyl-4-chromanone (3.10 g, 10 mmol) (prepared according to procedure
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K. Koch and MS Biggers, J. Org. Chem. 1994, 59, 1216) was added to a solution of methyl propargyl ether (1.05 g, 15 mmol), (Ph3P) 4Pd (210 mg, 0.30 mmol) and Et3N (6 ml) in DMF (30 ml) and heated to 70 ° C for an hour. After cooling, the mixture was quenched with saturated NH4Cl (40 mL) and extracted with Et2O (2 x 50 mL). The combined organic layers were dried over MgSO4, filtered and concentrated. The residue was purified by flash chromatography using 9: 1 hexanes-EtOAc as eluent to give 7- (3'-methoxypropnyl) -3-methyl-4-chromanone (64) (1.40 g) as a white solid. mp 60-63 ° C.
Conversion of compound 64 to the title compound 65 was performed in the same manner as described above for 2-amino-7-furyl-3-methyl-4-chromanone hydrochloride.
<img file="PL205059B1_D0036.tif" />
2-Amino-α-tetralone hydrochloride (66).
This compound was prepared from α-tetralone as shown in Scheme 14, by the same procedure as described above for 2-amino-7-furyl-3-methyl-4-chromanone hydrochloride.]
<img file="PL205059B1_D0037.tif" />
2-Amino-endo-6,9-ethanobicyclo [4.4.0] dec-7-enone hydrochloride (70).
This amine hydrochloride was prepared as shown in Scheme 15. Thus, to a solution of 2-cyclohexen-1-one (2.0 g, 20.8 mmol) in toluene (100 mL) was added aluminum chloride (700 mg, 5.2 mmol). ). After 40 minutes, cyclohexadiene (8.3 g, 104 mmol) was added and heated to 100 ° C for 2 hours. After cooling, the mixture was diluted with Et2O (300 mL) and washed with saturated NaHCO3 (2 x 150 mL) and brine (100 mL). The combined organic layers were dried over MgSO4, filtered and concentrated. The residue was purified by flash chromatography using 50: 1 hexanes-Et2O as eluent to give endo-2,5-ethanobicyclo [4.4.0] dec-7-en-10-one (67) (2.77 g). which was pure according to <sup>1</sup>H-NMR and GC / MS.
A solution of endo-2,5-ethanobicyclo [4.4.0] dec-7-en-10-one (67) (2.17 g, 12.3 mmol) in THF (20 mL) was added at -78 ° C to a solution of LDA (6.7 mL, 2.0 M in THF, 13.5 mmol) in THF (30 mL). After 45 minutes, trimethylsilyl chloride (2.0 g, 18.5 mmol) was added and the mixture was slowly warmed to 0 ° C. The mixture was diluted with saturated NaHCO3 solution (30 mL), extracted with Et2O (2 x 30 mL), dried (MgSO4) and concentrated. The residue was dissolved in THF (60 ml) and N-bromosuccinimide (2.6 g, 14.7 mmol) was added portionwise. After 30 minutes, the mixture was diluted with saturated NH4Cl solution (30 mL) and extracted with Et2O (2 x 40 mL). The combined organic layers were dried (MgSO4) and concentrated. The residue was purified by flash chromatography using 33: 1 hexanes-Et2O as eluent to give 2-bromo-endo-6,9-ethanobicyclo [4.4.0] dec-7-enone (68) (1.44 g) in the form of a pale yellow oil which was pure according to<sup>1</sup>H-NMR and GC / MS.
To a solution of 2-bromo-endo-6,9-ethanobicyclo [4.4.0] dec-7-enone (68) (850 mg, 3.9 mmol) in DMF (20 ml) was added sodium azide (280 mg, 4 3 mmoles). After 2 hours, the mixture was diluted with water (30 mL) and extracted with Et2O (2 x 40 mL). The combined organic layers were dried (MgSO4) and concentrated. The residue was purified by flash chromatography using the mixture as eluent
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20: 1 hexanes: Et2O to give 2-azido-endo-6,9-ethanobicyclo [4.4.0] dec-7-enone (69) (469 mg) as an oil which was pure according to <sup>1</sup>H-NMR.
Triphenylphosphine (486 mg, 1.85 mmol) was added to a solution of 2-azido-endo-6,9-ethanobicyclo [4.4.0] dec-7-enone (69) (310 mg, 1.42 mmol) in THF (10 ml) and water (1 ml). After stirring for 12 hours, the mixture was diluted with 6N HCl (10 mL) and the layers were separated. The organic phase was extracted with 6 N HCl (2 x 5 mL) and the combined aqueous layers were concentrated to dryness to give the desired title compound 70 as a thick orange oil (500 mg) of which<sup>1</sup>H-NMR (DMSO-d6) was consistent with the assigned structure.
isopropyl endo-2-aminonorbornane-5-carboxylate (71) and isopropyl endo-2-aminonorbornane-6-carboxylate (72).
<img file="PL205059B1_D0038.tif" />
72
These amines were prepared from isopropyl norborn-2-ene-5-carboxylate in the same manner as previously described (see scheme 9).
General procedure for reductive amination of ketones to amines.
The ketone (1mmol), ammonium acetate (20mmol) and 3A molecular sieves (2.8 weight equivalents) were mixed in dry methanol in a dry flask under a nitrogen atmosphere. Sodium cyanoborohydride (4 mmol) was added and the resulting mixture was stirred at room temperature until no starting ketone disappeared by TLC analysis. Methanol was stripped from the reaction mixture under reduced pressure and the residue was dissolved in 6N HCl. After stirring for 15 minutes, the abrasive materials were removed by extraction with diethyl ether. The pH of the aqueous phase was carefully raised to ~ 8 with 50% aqueous NaOH, and the amine was extracted with EtOAc (3 times). The EtOAc extracts were combined, washed with brine, dried (Na2SO4), filtered, and concentrated to give the respective amine. The crude amine was generally pure and was used without further purification.
General procedure for BOC deprotection of amines.
Triethylsilane (0.5 ml) and trifluoroacetic acid (1 ml) were added to an ice-cold solution of the BOC protected amine (1 mmol) in dry CH2Cl2 (1 ml). The progress of the reaction was assessed after the starting material disappeared (5 minutes to 1.5 hours). The reaction mixture was diluted with toluene and concentrated. The residue was dissolved in water (10 mL) and EtOAc (20 mL), the pH was adjusted to ~ 8 (aq. NaHCO3) and the organic phase was separated. The aqueous phase was extracted with EtOAc (2 x 15 mL). The organic phases were combined, washed with brine, dried (Na2SO4), filtered and concentrated to give the amine.
Preparation of amines 73 and 74.
<img file="PL205059B1_D0039.tif" />
These amines were prepared from the corresponding known ketodilactones (J. Org. Chem. 1998, 63, 9889-94) under the standard reductive amination conditions described above. Specters<sup>1</sup>H, <sup>13</sup>CNMR and IR followed the assigned structures.
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<img file="PL205059B1_D0040.tif" />
Preparation of amines 77 and 78.
The preparation of these amines is shown in Scheme 16. Macrodilactone 75 was prepared according to procedure J. Org. Chem. 1998, 63, 9889-94. Thus, Nt-BOC-aspartic acid (2.33 g) was reacted with 2-chloromethyl-3-chloropropene (1.25 g) and Cs2CO3 (7.0 g) in DMF (1000 ml) under standard macrolactonization conditions described in the reference above to give 1.12 g (40% yield) of compound 75 as a glassy solid. Mass spectrum (EI-) indicated [M-1] + at (m / e) 284, although the spectra<sup>1</sup>H, <sup>13</sup>C NMR and IR were consistent with the structure of compound 75.
To a solution of alkene 75 (288 mg, 1.01 mmol) in dry EtOAc (6 mL) was added 10% Pd / carbon (60 mg). The resulting mixture was purged with nitrogen and stirred under 45 psi of hydrogen pressure in a Parr hydrogenator for 2.5 hours.
The reaction mixture was purged with nitrogen, filtered, and concentrated. From the residue, after purification by flash column chromatography (silica gel, 7: 3 hexane EtOAc), 91 mg (32% yield) of the reduced product 76 were obtained.<sup>1</sup>H, <sup>13</sup>C-NMR and IR were consistent with structure 76.
Removal of the BOC protecting group from compounds 75 and 76, following the general BOC deprotection procedure described earlier, gave the corresponding amines 77 and 78. Spectra <sup>1</sup>H, <sup>13</sup>C-NMR and IR were consistent with the assigned structures.
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<img file="PL205059B1_D0041.tif" />
Synthesis of phenyldilactone 81.
To an ice-cold (0 ° C), well-stirred solution of phenylsuccinic acid (0.923 g, 5.2 mmol) and DMAP (0.064 g, 0.52 mmol) in dry CH2Cl2 (55 ml), a solution of BOC-serinol (Synthesis 1998, 1113-1118) (1.0 g, 5.2 mmol) over 30 minutes. The resulting mixture was slowly warmed to room temperature, stirred for an additional 12 hours, diluted with CH2Cl2 (40 mL), and extracted with saturated aqueous sodium bicarbonate (3 x 10 mL). The basic extracts were combined, carefully acidified with 2N HCl, and extracted with EtOAc (3 x 20 mL). The combined EtOAc extracts were washed with brine, dried (Na2SO4), filtered and concentrated to a white foam (1.7 g).<sup>1</sup>H-NMR indicated a 1: 1 diastereomeric mixture of acids 79.
To a well-stirred ice-cold slurry of acids 79 (1.00 g, 2.72 mmol) and triphenylphosphine (786 mg, 3.0 mmol) in dry THF (122 mL) was added a solution of diethyl azodicarboxylate (0.52 g, 3.0 mmol). mmol) in THF (55 mL) dropwise over 3 hours. The resulting mixture was slowly warmed to room temperature, stirred for an additional 5 hours, and concentrated to approximately 5 mL. The remaining mixture was diluted with EtOAc (50 mL) and water (20 mL). The organic phase was separated, washed with aq. NaHCO3 (10 mL), brine (10 mL), dried (Na2SO4), filtered, and concentrated to an oily residue. Purification by flash chromatography (silica gel, hexanes) gave 228 mg (22% yield) of a 1: 1 mixture of dilactones 80, mp = 161-162 ° C. Mass spectrum (EI) indicated M + at m / e 349.
Removal of the BOC protecting group under the standard BOC deprotection conditions described previously gave the amine 81.
PL 205 059 B1
<img file="PL205059B1_D0042.tif" />
The preparation of these compounds is outlined in Scheme 18. To a mixed solution of serinol (3.0 g, 15.7 mmol), pyridine (1.24 g, 0.98 mol), and DMAP (0.19 g, 1.57 mmol) in dry CH2Cl2 (140 ml) was added dropwise a solution of N-CBz-aspartic anhydride (3.52 g, 14.13 mmol) in dry THF (20 ml). After stirring for 2 hours at room temperature, the reaction mixture was concentrated to a volume of approximately 10 mL and diluted with EtOAc (100 mL) and water (30 mL). The pH was adjusted to 8.5 (aq. NaHCO3) and the aqueous phase was separated, acidified with 2N HCl to pH 3 and extracted with EtOAc (3 x 20 mL). The combined organic extracts were washed with brine, dried (Na2SO4), filtered and concentrated to give 5.8 g of compound 82 as a foamy white. Specters<sup>1</sup>H-NMR indicated that it was fairly pure and contained a mixture of diastereomers.
To a solution of triphenylphosphine (3.60 g, 13.75 mmol) and 1,3-diisopropylcarbodiimide (2.80 g, 13.75 mmol) in dry THF (1.15 L) was added dropwise an acid solution of 82 (5 , 5 g, 12.5 mmol) in dry THF (100 mL). The resulting mixture was stirred for an additional 6 hours, concentrated in vacuo to a volume of approximately 20 mL, and diluted with ether (200 mL) and water (100 mL). The organic phase was separated and washed with a 5% aqueous NaHCO3 solution and brine, dried (Na2SO4), filtered and concentrated in vacuo. The oily residue was purified by flash column chromatography to provide 1.3 g (23% yield) of the desired dilactones 83. Mass spectrum (ES-) indicated m / e 421 (M-1) +. Specters<sup>1</sup>H, <sup>13</sup>C-NMR and IR were consistent with structure 83.
Dilactone 83 was deprotected under standard BOC deprotection conditions to afford the amine 84.
To a solution of the protected N-CBz dilactone 83 (200 mg, 0.47 mmol) in EtOAc (10 mL) was added 10% Pd / C (40 mg), and the resulting mixture was stirred under pressure with a hydrogen gas balloon for 12 hours. The reaction mixture was purged with N2, filtered through a fritted funnel
Glass and concentrated to give amine 85 (126 mg). This crude amine was used without further purification.
Preparation of amines 86 and 88.
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The synthesis of 2,6,6-trimethyl-2,4-cycloheptadienylamine (86) and 2,3,6,6-tetramethyl-3-cycloheptenone (87), which is a precursor to amine 88, is shown in Scheme 19. Thus, eucarvone (Can. J. Chem. 1974, 52, 1352) was easily converted to the corresponding amine 86 using the titanium isopropoxide / NaBH4 / Et3N catalyzed reductive amination procedure described in Synlett 1999, 1781. Cu (I) catalyzed addition of Michael trimethylaluminum to eucarbon using the procedure described in Tetrahedron 1995, 51, 743-754 gave 2,3,5,5-tetramethyl-3-cycloheptenone (87). It was converted to 2,3,5,5-tetramethyl-2-cycloheptenylamine (88) following the general procedure described in WO 9927783.
N-Methyl-N- (2-phenylethyl) - (1,5,5-trimethyl-3-amino-cyclohexyl) carbamide (89).
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1,5,5-trimethyl-3-oxo-1-cyclohexyl carboxylic acid (MS Ziegler and RM Herbst, J. Org. Chem. 1951, 16, 920) was coupled to N-methyl-2-phenylethylamine using standard coupling conditions with using HOAt, EDCI and DMAP to give [N-methyl-N- (2-phenylethyl) -1,5,5-trimethyl-3-oxo-1-cyclohexylcarboxamide as a pale yellow oil. Mass spectrum indicated the parent ion at m / e 301. Spectra<sup>1</sup>H i <sup>13</sup>C-NMR was consistent with this structure.
Amine 89 was prepared from this ketone according to the general procedure described in WO 9927783, by converting the corresponding N-hydroxyoxime followed by hydrogenation in the presence of Raney Ni<sup>®</sup>. <sup>1</sup>H-NMR of the amine showed a 1: 1 mixture of diastereomers.
3- (3,3-Dimethylbutoxycarbonyl) -3,5,5-trimethylcyclohexylamine (90).
<img file="PL205059B1_D0045.tif" />
1,5,5-trimethyl-3-oxo-1-cyclohexylcarboxylic acid (3.0 g) (MS Ziegler and RM Herbst, J. Org. Chem. 1951, 16, 920) was treated with 3,3-dimethylpentanol (1, 84 g), DMAP (2.21 g) and 1,3-diisopropylcarbodiimide (2.17 g) in CH2Cl2 (80 ml) under standard coupling conditions to give 2.41 g (55% yield) of 3- (3.3- dimethylbutoxycarbonyl) -3,5,5-trimethylcyclohexanone. Mass spectrum (EI) indicated the parent ion at m / e 268.
This ketone was converted to the title amine 90 following the general procedure described in WO 9927783, by conversion to the corresponding oxime followed by hydrogenation in the presence of Raney Ni<sup>®</sup>. <sup>1</sup>H-NMR of the amine 90 showed a 1: 1 mixture of diastereomers.
PL 205 059 B1
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4- (4,6-Bis-trifluoromethyl-2-pyridyl) oxy-3,3,5,5-tetramethylcyclohexylamine (93).
The synthesis of this amine is shown in Scheme 20. Thus, 4-hydroxy-3,3,5,5-tetramethylcyclohexanaldehyde ethylene acetal (900 mg, 4.2 mmol) was dissolved in dry DMF (8.4 mL), the mixture was cooled to 0 ° C and a 35% (w / w) KH oil suspension (591 mg, 5.04 mmol) was added. After the mixture was stirred for one hour, a solution of 2-chloro-4,6-bis-trifluoromethyl-2-pyridine (1.48 g, 6.3 mmol) in DMF (2 mL) was added dropwise. The mixture was stirred at 0 ° C for an hour, then at room temperature for 12 hours, and carefully quenched with ammonium chloride. Diethyl ether (100 ml) was added and the organic phase was separated, washed with brine, dried (MgSO4) and concentrated to a dark brown solid. Recrystallization from hot hexanes gave 950 mg (53% yield) of 4- (4,6-bis-trifluoromethyl-2-pyridyl) oxy-3,3,5,5-tetramethylcyclohexanaldehyde ethylene acetal (91), mp 105-106 ° C.
Acetal 91 (900 mg) was dissolved in a 1: 1: 1 mixture (30 ml) of THF, dioxane and 2 N HCl, and the resulting solution was stirred at room temperature for 12 hours at which time GC indicated complete disappearance of the starting material. The mixture was diluted with water and diethyl ether (50 mL each), the organic phase was separated, washed with brine, dried (Na2SO4) and concentrated to an oily residue. This residue was chromatographed on silica gel (hexane-EtOAc, 5: 1) to give 712 mg (96% yield) of the ketone 92 as a colorless oil. Mass spectrum (EI) indicated the parent ion m / e 383.
The reductive amination of 92 to the title amine 93 was performed according to the general procedure described in WO 9927783.
PL 205 059 B1
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Scheme 21
3- (2,3-Dichloropropyloxy) methyl-3,5,5-trimethylcyclohexylamine (97).
The synthesis of amine 97 is shown in Scheme 21. Dichlorination of alkene 94 according to the procedure
Tetrahedron Lett. 1991, 32, 1831-4, gave acetal 95. The latter (500 mg) was dissolved in a 1: 1 mixture of THF and 2 N HCl. The resulting solution was stirred at room temperature for an hour when TLC indicated the starting material had disappeared. The mixture was diluted with EtOAc and water (30 mL each) and the organic phase was separated and washed with brine, dried (Na2SO4), filtered and concentrated to give 383 mg of ketone 96 as an oil.<sup>1</sup>H-NMR was consistent with a diasteromeric mixture of isomers. Reductive amination following the standard procedure described previously gave the title amine 97.
<img file="PL205059B1_D0048.tif" />
3-Benzoyl-3,5,5-trimethylcyclohexylamine (100).
The preparation of this amine is shown in Scheme 22. 3-cyano-3,5,5-tetramethylcyclohexanaldehyde ethylene acetal (98) (international application WO 9927783), after reaction with phenyl lithium followed by acid hydrolysis, gave diketone 99 which was converted to the title amino-aminoethylene. 100 according to the procedure of the above patent application.
PL 205 059 B1
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ii. silica gel
Scheme 23
5e- (2-Phenylethyl) -3e-methoxy-4e-methyl-4-nitro-cyclohexylamine (105).
The preparation of amine 105 is shown in Scheme 23. Condensation of nitroethane with dihydrocinnamaldehyde according to Bull procedure. Chem. Soc. Jap. 1968, 41, 1441, gave the corresponding nitro alcohol 101. Dehydration 101 according to Synthesis, 1982, 1017, followed by polymerization with triphenylphosphine (Tetrahedron Lett. 1998, 39, 811-812) gave alkene 103. Diels-Alder cycloaddition 103 to the Danishefsky diene according to the procedure of Tetrahedron Lett. 2000, 41, 1717 gave the ketone 104. The ketone 104 was converted to the amine 105 following the standard publication procedure of the international patent application WO 9927783.
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3-Cyano-3,5,5-trimethylcyclohexylamine (106).
This compound was prepared (Scheme 24) by reductive amination of 3-cyano-3,5,5-trimethylcyclohexanone following the standard reductive amination procedure described above. The mass spectrum (EI) indicated the parent ion m / e 167.
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3-Amino-5-phenylthiopyran (107).
This compound was prepared as shown in Scheme 25. Thus, up to 0.96 g (5 mmol) of 5-phenyl-3-thiopyranone (PT Lansbury, et al., J. Am. Chem. Soc. 1970, 92, 5649) 7.7 g (100 mmol) of ammonium acetate and 6.5 g of 3A molecular sieves were added in 50 ml of anhydrous methanol. After stirring for 30 minutes at room temperature, 1.25 g (20 mmol) of cyanoborohydride was added in portions.
Of sodium. After stirring for 16 hours, the mixture was filtered by gravity and the methanol was evaporated under reduced pressure. The residue was partitioned between ice / HCl and ether. The acidic aqueous phase was extracted twice with ether then made basic with ice and 50% aqueous NaOH solution. The mixture was extracted with CH2Cl2, dried (MgSO4) and evaporated to yield 0.19 g (20%) of the title compound. GC / MS showed 100% purity with molecular ion 193.
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4- (4-Trifluoromethyl) phenoxycyclohexylamine (109).
This compound was prepared according to scheme 26. To a stirred solution of sodium hydride (1.2 g, 0.05 mol) in 50 ml of DMF was added dropwise over 10 minutes a solution of 1,4-dioxaspiro [4.5] decan-8-ol ( 7.5 g, 0.047 mol) in 15 ml of DMF. The mixture was stirred at ambient temperature for 30 minutes. 4-Fluorotrifluoromethylbenzene (7.71 g, 0.047 mol) was added in one portion and the mixture was stirred at room temperature for 2 hours and then overnight at 70 ° C. The reaction mixture was poured into cold water (700 ml) and the solution was slightly acidified by the addition of 1 N HCl. The mixture was filtered and the aqueous filtrate was extracted with hexane (2 x 150 ml). The filtered solid was dissolved in the hexane extracts and washed with water (50 ml). The solution was dried over MgSO4, filtered and concentrated to give a white solid. The solid was recrystallized from methanol / water to give pure ketal (8.6 g, 61%).
Silica gel (30 g) was suspended in 150 mL of CH2Cl2. To this suspension, 7 ml of a 12% solution of HCl in water were added dropwise over 5 minutes. The mixture was stirred vigorously to prevent caking. A solution of the above ketal (8.0 g, 26.49 mmol) dissolved in 75 mL of CH2Cl2 was added and the mixture was stirred for 3 hours. The mixture was then filtered and the silica gel pad washed with 500 ml of CH2Cl2. The solvent was evaporated, yielding 5.8 g (86%) 4- (4-trifluorophenoxy) cyclohexanone (108).
Reductive amination of ketone 108 following the standard reductive amination procedure described above gave the title compound 109.
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Scheme 27
4-Benzoyloxy-3,3,5,5-tetramethylcyclohexylamine (111).
This compound was prepared according to the procedure in Scheme 27. To a stirred solution of 7.7,9,9-tetramethyl-1,4-dioxaspiro [4.5] decan-8-ol (0.37 g, 1.73 mmol) in 6 mL THF cooled to 0 ° C was added dropwise n-BuLi (2.5 M in hexanes, 1.73 mmol, 0.7 mL). The mixture was stirred for 10 minutes. Then benzoyl chloride (1.73 mmol, 0.2 ml) was added and the mixture was allowed to warm to room temperature and stirred overnight. The reaction mixture was poured into 50 ml of 0.5N NaOH and extracted with ether (3 x 20 ml). The ether layer was dried over MgSO4, filtered and concentrated. The residue was purified by radial chromatography using 4: 1 hexane-EtOAc as eluent. There was thus obtained 0.55 g (-100%) of the benzoyloxyketal.
Silica gel (2.2 g) was suspended in 10 mL of CH2Cl2. To this suspension was added dropwise 0.5 ml of a 12% solution of HCl in water over 5 minutes. The mixture was stirred vigorously to prevent caking. A solution of the above benzoyloxyketal dissolved in 5 ml of CH2Cl2 was added and the mixture was stirred for 3 hours. The mixture was then filtered and the silica gel pad was washed with 100 mL of CH2Cl2. The solvent was evaporated to give 0.46 g (90%) of benzoyloxycyclohexanone 110 as a clear oil.
PL 205 059 B1
To a mixed solution of benzoyloxycyclohexanone 110 (0.46 g, 1.68 mmol) in 4 ml of methanol was added in one portion a solution of hydroxylamine hydrochloride (0.23 g, 3.25 mmol) and potassium acetate (0.32 g, 3.25 mmol) in 4 ml of water. The mixture was stirred at room temperature overnight. Water (20 ml) was added and the resulting mixture was extracted with ether (3 x 10 ml). The ether extracts were combined, washed with saturated NaHCO3 (1 x 20 ml) and brine (1 x 15 ml). The ether layer was dried over MgSO4, filtered and concentrated to give the desired oxime (0.39 g, 80%) as a mixture of E and Z isomers.
Raney Nickel<sup>®</sup> (0.8 g wet weight, Aldrich Chemical Co.) in a 500 ml Parr pressure bottle was washed with water (3 x 20 ml) then ethanol (3 x 20 ml), decanting the washing solvent each time. To this washed catalyst was added a solution of oxime (0.39 g, 1.35 mmol) in dry ethanol (30 mL). Some heating of this solution was necessary for dissolution. The resulting mixture was saturated with ammonia by bubbling ammonia gas through the solution for 1 minute. This solution was placed under a hydrogen atmosphere (initial hydrogen pressure = 50 psi) on a Parr shaker and shaken for 7 hours. The reaction mixture was then filtered through a pad of Celite® and the solvent was evaporated to give an almost colorless liquid (0.37 g, quantitative yield). Proton NMR and GC / MS were consistent with this material being a diastereomeric mixture (4: 1 ratio) of the title amine 111. This material was used as is without further purification.
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Scheme 28
4-Amino-2,2,6,6-tetramethylcyclohexyl-6-chloro-2-pyridine carboxylate (113).
This compound was synthesized as shown in Scheme 28. To a stirred solution of 7.7,9,9-tetramethylcyclohexyl-1,4-dioxaspiro [4.5] decan-8-ol (0.32 g, 1.50 mmol) in 5 mL THF cooled to 0 ° C, n-BuLi (2.5 M in hexanes, 1.50 mmol, 0.6 mL) was added dropwise. The mixture was stirred for 10 minutes. 6-Chloropicolinoyl chloride (1.50 mmol, 0.26 g) was then added as a solution in 1 mL of THF and the reaction was allowed to warm to room temperature. The solution solidified so an additional 5 mL of THF was added and the mixture was stirred overnight. The reaction mixture was poured into 40 ml of 0.5N NaOH and extracted with ether (3 x 20 ml). The ether layer was dried over MgSO4, filtered and concentrated. Proton NMR revealed the expected product together with the starting material in a ratio of 1.6: 1. These compounds cannot be separated by silica gel chromatography so the mixture is carried over to the next step and purified there.
Silica gel (1.4 g) was suspended in 10 mL of CH2Cl2. To this suspension, 0.3 ml of a 12% solution of HCl in water was added dropwise over 5 minutes. The mixture was stirred vigorously to prevent caking. A solution of the above mixture, dissolved in 5 mL of CH2Cl2, was added and the mixture was stirred for 3 hours. The mixture was then filtered and the silica gel pad was washed with 100 ml of CH2Cl2. The solvent was evaporated to yield an oil. Precipitation of the desired picoline ester 112 was carried out by adding 10 mL of 4: 1 hexane-EtOAc. The resulting solid was filtered and washed with 10 mL of 4: 1 hexane-EtOAc. The hexane-EtOAc washes were combined and evaporated to yield an oil. The above procedure was repeated 3 times to yield the picoline ester 112 as a white solid (214 mg, 46% over two steps). Proton NMR and GC / MS showed the desired product in> 95% purity.
A mixture of this ester (200 mg, 0.65 mmol), titanium (IV) isopropoxide (1.30 mmol, 0.38 ml), ammonium chloride (1.30 mmol, 70 mg) and triethylamine (1.30 mmol, 0 18 mL) in absolute ethanol (10 mL) was stirred under nitrogen at ambient temperature for 12 hours. Then sodium borohydride (0.97 mmol, 40 mg) was added and the resulting mixture was stirred for an additional 8 hours at ambient temperature. The reaction was then quenched by pouring into aqueous ammonia (20 mL, 2.0 M), and the resulting solution was extracted with ether (3 x 20 mL). The combined ethereal extracts were extracted with 2 N HCl (2 x 20 mL) to separate the bases. The acidic solution was washed once with ether (20 ml)
The mixture was then treated with aq. Sodium hydroxide (2 N) to pH 10-12, and extracted with EtOAc (3 x 20 mL). The combined EtOAc washes were dried over MgSO4, filtered and concentrated to an oil. This material was consistent with the diastereomeric 6: 1 mixture of the title cyclohexylamines. Proton NMR and GC / MS showed the desired product in ~ 75% purity. This amine mixture was used as is without further purification.
trans-2-Thiomethylcyclohexylamine.
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This amine was prepared from cyclohexene using the azasulfenylation technique of BM Trosta and T. Shibaty, J. Am. Chem. Soc. 1982, 104, 3225.
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4-Phenylthiocyclohexylamine (115).
This compound was prepared according to the procedure shown in Scheme 29. To a stirred solution of 4-phenylthiocyclohexanone (VK Yadav and DA Jeyaraj, J. Org. Chem. 1998, 63, 3474) (1.20 g, 5.83 mmol) in 20 mL of methanol a solution of benzyloxyamine hydrochloride (1.80 g, 11.22 mmol) and potassium acetate (1.10 g, 11.22 mmol) in 20 ml of water was added in one portion. The mixture was stirred at room temperature overnight. Water (60 ml) was added and the resulting mixture was extracted with ether (3 x 40 ml). The ether extracts were combined, washed with saturated NaHCO3 solution (1 x 50 ml) and brine (1 x 40 ml). The ether layer was dried over MgSO4, filtered and concentrated to an oil. This material was purified by radial chromatography (9: 1 hexane-EtOAc) to afford the corresponding O-benzyloxime 114 (1.72 g, 95%) as a mixture of E and Z isomers.
Lithium aluminum hydride (5.08 mmol, 0.19 g) was suspended in 10 ml of anhydrous ether and cooled to 0 ° C. O-benzyloxime 114, dissolved in 5 mL of ether, was added dropwise, and the mixture was allowed to warm to room temperature and stirred for 4 hours. The excess lithium aluminum hydride was destroyed by the careful addition of water (0.2 mL) and 1 N NaOH (0.2 mL) simultaneously. The mixture was filtered and the salts washed with 50 ml of ether. The solvent was evaporated to yield 0.62 g (93%) of the title amine 115 as an oil. Proton NMR and GC / MS showed the product to be diastereomeric amines in a ratio of 1.3: 1 with a purity of> 95%.
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Scheme 30
3 - {[3- (Trifluoromethyl) -2-pyridinyl] sulfanyl} cyclohexylamine (117).
This amine was prepared according to the procedure shown in Scheme 30. To a mixed solution of 2-cyclohexen-1-one (0.44 mL, 4.58 mmol) and 2-mercapto-5-trifluoromethylpyridine (0.82 g, 4.58 mmol) in 20 mL of CH 2 Cl 2 at ambient temperature, bismuth trichloride (60 mg, 0.18 mmol) was added. The mixture was stirred at room temperature overnight and concentrated. The residue was purified by radial chromatography using 4: 1 hexane-EtOAc as eluent to afford 1.12 g (89%) of the conjugated addition product, 2- (3-oxo-cyclohexylthio) -5-trifluoromethyl-pyridine (116).
To a stirred solution of compound 116 (0.26 g, 0.95 mmol) in 3 mL of methanol was added a solution of benzyloxyamine hydrochloride (0.29 g, 1.83 mmol) and potassium acetate (0.18 g, 1.83 mmol) in one portion. mmoles)
In 3 ml of water. The mixture was stirred at room temperature overnight. Water (10 ml) was added and the resulting mixture was extracted with ether (3 x 10 ml). The ether extracts were combined, washed with saturated NaHCO3 (1 x 15 ml) and brine (1 x 15 ml). The ether layer was dried over MgSO4, filtered and concentrated to give an oil. This material was purified by radial chromatography (9: 1 hexane EtOAc) to provide the separated oximes (0.32 g, 89%). The E isomer (Rf = 0.33) and the Z isomer (Rf = 0.25) showed consistent proton NMR and GC / MS spectral characteristics.
Lithium aluminum hydride (1.33 mmol, 50 mg) was suspended in 3 ml of anhydrous ether and cooled to 0 ° C. The combined oximes dissolved in 1 mL of ether were added dropwise, and the mixture was allowed to warm to room temperature and stirred for 4 hours. The excess lithium aluminum hydride was destroyed by carefully adding water (50 µL) and 1 N NaOH (50 µL) simultaneously. The mixture was filtered and the salts washed with ether to a volume of 100 mL. The ether solution was extracted
N HCl (2 x 50 ml) for separation of non-basic substances. The acidic aqueous solution was washed once with ether (50 mL), then treated with aqueous sodium hydroxide (2M) to pH 10-12, and extracted with ether (3 x 50 mL). The ether layer was dried over MgSO4, filtered and concentrated to afford 121 mg (52%) of the desired title amine 117 as an oil. Proton NMR and GC / MS showed the product to be diastereomeric amines in a ratio of 1.3: 1 with a purity of> 95%.
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118 119 120
Diagram 3 1
1- (5-Amino-1,3,3-trimethylcyclohexyl) -4-phenyl-1-butanone (120).
Amine synthesis was carried out as outlined in Scheme 31. A suspension of naphthalene (1.23 g, 9.57 mmol) and lithium granules (67 mg, 9.57 mmol) in 10 mL of THF at ambient temperature was stirred overnight under nitrogen. This lithium naphthalide solution was cooled to -60 ° C and 3-phenylpropyl-phenyl sulfide (1.1 g, 4.78 mmol) was added. The reaction mixture was warmed to -20 ° C to ensure completion of the reaction and then cooled back to -60 ° C. A solution of 7-cyano-7,9,9-trimethyl-1,4-dioxaspiro [4.5] decane (0.5 g, 2.39 mmol) in 5 mL of THF was added and the solution was warmed to 0 ° C and stirred for 2 hours. at this temperature. The reaction was quenched by adding 10 mL of saturated ammonium chloride solution and then treated with 2N HCl to pH ~ 4 and stirred at room temperature overnight. The mixture was extracted with ether (3 x 30 ml), dried over MgSO4, filtered and evaporated. The residue was purified by radial chromatography using 6: 1 hexane-EtOAc as eluent. There was thus obtained a 1: 3 mixture of 3- (2-oxo-4-phenylbutyl) -3,5,5-trimethylcyclohexanone 118 (136 mg, Rf = 0.18) and its ketal (509 mg, Rf = 0.33). the product of incomplete hydrolysis. The overall yield of the addition of 1-lithio-3-phenylpropane to the nitrile was calculated to be 85%.
Silica gel (1.82 g) was suspended in 10 mL of CH2Cl2. To this suspension, 0.41 ml of a 12% solution of HCl in water was added dropwise over 5 minutes. The mixture was stirred vigorously to prevent caking. A solution of the above ketal dissolved in 2 ml of CH2Cl2 was added and the mixture was stirred for 3 hours. The mixture was then filtered and the silica gel pad was washed with 50 ml of CH2Cl2. The solvent was evaporated, yielding 0.48 g (100%) of 3- (1-oxo-4-phenylbutyl) -3,5,5-trimethylcyclohexanone (118) as a clear oil consistent with its NMR and GC / MS properties.
To a mixed solution of this bis-ketone (0.62 g, 2.17 mmol) in 7 ml of methanol was added a solution of hydroxylamine hydrochloride (0.16 g, 2.28 mmol) and sodium acetate (0.25 g) in one portion. , 3.03 mmol) in 7 mL of water. The mixture was stirred at room temperature for an hour. Water (20 ml) was added and the resulting mixture was extracted with ether (3 x 20 ml). The ether extracts were combined, washed with saturated NaHCO3 (1 x 20 ml) and brine (1 x 20 ml). The ether layer was dried over MgSO4, filtered and concentrated to afford the desired monooxime 119 (0.57 g, 87%) as a mixture of E and Z isomers.
Raney Nickel<sup>®</sup> (0.8 g wet weight, Aldrich Chemical Co.) in a 500 ml Parr pressure bottle was washed with water (3 x 20 ml) then ethanol (3 x 20 ml), decanting the washing solvent each time. To this washed catalyst was added a solution of oxime 119 (0.57 g, 1.89 mmol) in dry ethanol (40 mL). The resulting mixture was saturated with ammonia by bubbling ammonia gas through the solution for 1 minute. This solution was placed under an atmosphere of hydrogen (initial hydrogen pressure = 50 psi) on a Parr shaker and shaken for 7 hours. The mixture
The reaction was then filtered through a pad of Celite<sup>®</sup> and the solvent was evaporated to give an oil (0.43 g, 80%). GC / MS analysis showed a diastereomeric 1: 1 mixture of the title amines 120, along with a small amount of an unidentified by-product. This amine mixture was used
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This amine was prepared according to scheme 32. To 0.37 g (1.8 mmol) of 2-benzyl-6-methyl-4-pyranone (G. Piancatilli, et al., Synthesis, 1982, 248) was added 0.22 g (3.1 mmol) hydroxylamine hydrochloride and 0.16 g (2 mmol) sodium acetate in 10 ml methanol. After stirring overnight, the mixture was partitioned between CH2Cl2 and water. The organic phase was dried and evaporated. After standing at room temperature the oily residue solidified to give 0.4 g (99%) of the desired oxime 121 as a 1: 1 mixture of Z / E isomers (based on GC / MS, molecular ion 219), and it was used as such in the reduction reaction below.
To 0.4 g of 2-benzyl-6-methyl-4-pyranone oxime (121) (1.8 mmol) in 50 ml of 95% ethanol was added 0.8 g (wet weight) of Raney® Nickel, which was washed with water 3 times and ethanol 3 times. The mixture was placed under hydrogen pressure of 446 kPa (41 psig) for 32 hours on a Parr shaker. After the pressure was released, the mixture was gravity filtered and evaporated under reduced pressure. The residue was partitioned between CH2Cl2 and an aqueous sodium carbonate solution. The organic phase was dried and evaporated in vacuo, yielding 0.19 g of a mixture of the desired title amine 122 plus oxime 121 in a 2: 1 mixture according to GC / MS analysis. The mixtures were used as is without further separation.
1-Benzoyl-4-aminopiperidine.
<img file="PL205059B1_D0060.tif" />
This compound was prepared by the method of Bhattacharyya, et al., SynLett, 1999, 11, 1781.
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123 124 <sub>125</sub>
Scheme 33
1- (4-Methylbenzyl) -4-piperidinylamine (125).
The synthesis of this compound was carried out according to scheme 33. To 5.05 g (50 mmol) of 4-hydroxypiperidine and 7.08 g (50 mmol) of p-methylbenzyl chloride in 25 ml of t-butanol was added excess solid potassium carbonate, and the mixture was heated in a bath. steam for 3 hours. The mixture was cooled to room temperature and partitioned between ether and water. The organic phase was extracted with cold dilute HCl, and the acidic aqueous phase was extracted with ether twice. The aqueous phase was quenched with ice and 50% aqueous NaOH and extracted with ether. The ethereal phase was washed with dilute aqueous sodium bicarbonate, brine, dried and evaporated in vacuo to give 5.3 g (52%) of 1- (4-methylbenzyl) -4-hydroxypiperidine (123) as an oil. GC / MS showed a purity of 100% with molecular ion at 205.
4.6 mL (64 mmol) of DMSO was added to 2.8 mL (32 mmol) of oxalyl chloride in 75 mL of CH2Cl2 at -78 ° C. To this mixture was added 5.3 g (26 mmol) 1- (4-methylbenzyl) -4-piperidinol 123 in 10 ml CH2Cl2, and the mixture was stirred for 5 minutes in the cold. The mixture was quenched with 18 mL (129 mmol) of triethylamine, allowed to come to room temperature, and saturated aqueous ammonium chloride solution was added. The organic phase was washed with water and brine, dried and evaporated to give 4.27 g (81%) of 1- (4-methylbenzyl) -4-piperidinone (124), which was used as is without further purification.
GC / MS showed 100% purity with the molecular ion at 203.
To 4.25 g (21 mmol) of 1- (4-methylbenzyl) -4-piperidinone 124 in 200 ml of anhydrous methanol were added 32.2 g (420 mmol) of ammonium acetate and 25 g of 3A molecular sieves. After stirring for 30 minutes, 5.25 g (84 mmol) of sodium cyanoborohydride were added portionwise. After stirring for 16 hours, the mixture was filtered by gravity and the methanol was evaporated under reduced pressure. The residue was partitioned between ether and ice / HCl. The acidic aqueous layer was extracted twice with ether, basified with 50% aqueous NaOH and ice, and extracted with CH2Cl2 to yield 2.1 g (48%) of the title amine 125 as a thick oil. GC / MS showed molecular ion at 204. The product was used as is without further purification.
<img file="PL205059B1_D0062.tif" />
1- (3-Trifluoromethylbenzyl) -4-piperidinylamine (127).
Prepared according to scheme 34. To 0.8 g (3.1 mmol) of 1- (3-trifluoromethylbenzyl) -4-piperidone [prepared in the same manner as 1- (4-methylbenzyl) -4-piperidinone) 123] in 7 ml of pyridine was added 0.22 g (3.1 mmol) of hydroxylamine hydrochloride, and the mixture was stirred overnight. The mixture was evaporated under reduced pressure and the residue was partitioned between ether and dilute aqueous sodium hydrogen carbonate solution. The organic phase was dried and evaporated under reduced pressure to give 0.52 g (62%) of the oxime oil which was used as is in the hydrogenation step below. GC / MS showed the molecular ion at 272.
To 0.5 g (2 mmol) of this oxime in 75 ml of ethanol was added 0.5 g (wet weight) of Raney® Nickel, which was washed 3 times with water and ethanol. Ammonia gas was bubbled into the mixture for several minutes and placed under 45 psig hydrogen pressure in a Parr shaker for 7 hours.
The vessel was degassed and the mixture was gravity filtered. The residue was dissolved in ether, filtered and evaporated to give 0.43 g (81%) of the title amine 127 which was used as is without further purification. GC / MS indicated a single peak with a molecular ion at 258.
<img file="PL205059B1_D0063.tif" />
Cis / trans-2-methyl-3-tetrahydrofurylamine (128).
PL 205 059 B1
This amine was prepared according to Scheme 35. To 1.15 g (10 mmol) of 2-methyltetrahydrofuran-3-one oxime (prepared by standard procedures from commercially available 2-methyltetrahydrofuran-3-one) in 50 ml of methanol was added 1 g (wet weight) Raney® Nickel, which was washed 3 times each with water and ethanol, and placed on a Parr shaker under 403.6 kPa (44 psig) of hydrogen. After 18 hours, the mixture was degassed and gravity filtered. Methanol was evaporated under reduced pressure and the residue was dissolved in ether and dried. The ether phase was evaporated under reduced pressure to give 0.6 g (59%) of the title amine 128 as a cis / trans mixture. GC / MS showed 41% with molecular ion 101 and 59% with molecular ion 101. The amine mixture was used as is without further purification.
<img file="PL205059B1_D0064.tif" />
Diagram 3 6
2-Benzyl-2,6-dimethyl-4-pyranylamine (133).
This amine was prepared according to the procedure outlined in Scheme 36. To 4.88 g (19.7 mmol) of 3-trimethylsilyloxybutyric acid trimethylsilyl ester in 40 ml of CH2Cl2 at -78 ° C, 2.4 g (18 mmol) of phenylacetone and 1 drop were added. trimethylsilyl trifluoromethanesulfonate. The mixture was allowed to stand under cool conditions for 2 days, then quenched with 0.5 ml of pyridine and allowed to reach room temperature. The organic phase was washed with a dilute aqueous sodium bicarbonate solution, dried and evaporated in vacuo. The residue was distilled under reduced pressure, yielding 2.89 g (67%) of 2-benzyl-2,6-dimethyl-4-methylene-1,3-dioxan-4-one (129), bp 125-32 ° C at 0.6 mm. GC / MS showed two isomers each with a base peak at 134 (phenylacetone).
To 1.5 g (6.8 mmol) of 2-benzyl-2,6-dimethyl-4-methylene-1,3-dioxan-4-one (129) under nitrogen was added 2.9 g (13.9 mmol) bis- (cyclopentyl) bis-methyl titanocene in 20 ml dry THF. The mixture was heated to reflux for 16 hours. The reaction mixture was cooled to room temperature and quenched with excess ether. The entire mixture was filtered through a bed of silica gel with ether as eluent. The filtrate was evaporated and chromatographed on silica gel using a mixture of EtOAc and hexane (1: 4) containing 0.2% triethylamine as eluent. The fractions containing the product were evaporated and suspended in petroleum ether and filtered under reduced pressure to give 1.2 g of a solid. GC / MS showed an approximately 3: 1 mixture of 2-benzyl-2,6-dimethyl-4-methylene-1,3-dioxane (130) with molecular ion 218, and substrate 129. The mixtures were used as is in the rearrangement described below.
To 1.2 g (5.5 mmol) of this mixture in 5 ml of toluene under nitrogen was added 10.99 ml (11 mmol) of triisobutylaluminum hydride at -78 ° C. The reaction was allowed to stand in the cold for 16 hours and then quenched with a few drops of water. The mixture was allowed to warm to room temperature, and an excess of saturated aqueous ammonium chloride solution was added. The mixture was extracted with excess CH2Cl2, difficult to separate from aluminum salt. The organic layer was dried and evaporated to give 1.1 g (90%) of 2-benzyl-2,6-dimethyl-4-hydroxypyranol (131) as a 75:25 mixture of isomers (by GC / MS).
To 1.1 g (5 mmol) of compound 131 in 10 ml of CH2Cl2 was added 1.6 g (7.5 mmol) of pyridinium chlorochromate in portions while stirring with a magnetic stirrer. After 1 hour at room temperature, ether was added and the mixture was filtered through silica gel and washed thoroughly with ether. The filtrate was evaporated to give 0.88 g (80%) of 2-benzyl-2,6-dimethyl-4-pyranone (132). GC / MS showed 99% purity with a base peak of 127 (M-benzyl). The isomer mixtures were used as is in the reductive amination described below.
To 0.88 g (4 mmol) of compound 132 in 40 ml of anhydrous methanol were added 6.16 g (80 mmol) of ammonium acetate and 5 g of 3A molecular sieves. After stirring for 45 minutes at room temperature, 1.02 g (16 mmol) of sodium cyanoborohydride was added in portions while stirring with a magnetic stirrer. The mixture was gravity filtered and the methanol was evaporated under reduced pressure. The residue was partitioned between ether and dilute cold HCl. The aqueous phase was extracted with ether twice then made basic with ice and 50% aqueous NaOH. The product was extracted with CH2Cl2, dried and evaporated to yield 0.43 g (49%) of the binary mixture of title amine 133 isomers. GC / MS showed 58% for molecular ion 128 and 42% for molecular ion 128.
<img file="PL205059B1_D0065.tif" />
This amine was synthesized according to the method of Scheme 37. Phenylpropionyl chloride (prepared from 6 g (40 mmol) of phenylpropionic acid and excess thionyl chloride was added to 4 g (40 mmol) of 4-hydroxypiperidine in 20 ml of toluene. An excess of 2 N aq. NaOH was added to the mixture. After stirring for 24 hours, the toluene layer was discarded and the aqueous phase was extracted with CH2Cl2, dried and evaporated in vacuo to yield 3.63 g (39%) of 1- (3-phenylpropionyl) -4-hydroxypiperidine (134). GC / MS indicated 100% purity with molecular ion 233.
To 1.68 mL of oxalyl chloride (19.2 mmol) in 35 mL of CH2Cl2 at -78 ° C was added 2.73 mL (38.5 mmol) of dry DMSO in 5 mL of CH2Cl2. Then 3.6 g (15.4 mmol) of 1- (3-phenylpropionyl) -4-hydroxypiperidine 134 in 5 ml of CH2Cl2 was added and the mixture was stirred for 5 minutes in the cool. 10.73 mL (77 mmol) of triethylamine in 5 mL of CH2Cl2 was added and the mixture was allowed to warm to room temperature. The mixture was quenched with saturated aqueous ammonium chloride solution. The organic phase was washed twice with water, saturated brine, dried and evaporated under reduced pressure to give 3.2 g (89%) of 1- (3-phenylpropionyl) -4-ketopiperidine (135). GC / MS showed 100% purity with molecular ion 231.
To 3.2 g (13.8 mmol) of compound 135 in 125 ml of anhydrous methanol were added 21.3 g of ammonium acetate and 20 g of 3A molecular sieves. After stirring for 30 minutes, 3.47 g (55.2 mmol) of sodium cyanoborohydride was added portionwise with stirring. After 3 hours, the mixture was filtered by gravity and the methanol was evaporated under reduced pressure. The residue was partitioned between ice / HCl and ether. The acidic aqueous phase was extracted twice more with ether. The aqueous phase was made basic with ice and 50% aq. NaOH. The mixture was extracted with CH2Cl2, dried and evaporated in vacuo to give 1.5 g (47%) of the title amine 136. GC / MS indicated 100% purity, with molecular ion at 232.
PL 205 059 B1
<img file="PL205059B1_D0066.tif" />
Preparation of the amine 139.
The synthesis of this amine is shown in Scheme 38. A screw-cap Teflon tube was charged with compound 137 (M. Shimano et al., Tetrahedron, 1998, 54, 12745) (0.80 g, 1.21 mmol) and 6 ml of pyridine. The solution was cooled to 0 ° C and treated with 1.1 mL of HF-pyridine complex and the solution was warmed to room temperature and stirred for 17 hours. An additional 1.1 mL of HF-pyridine complex was then added and the mixture was stirred for an additional 30 hours. This mixture was poured into a stirred ice-cold solution of 40 mL of 1 N HCl and 20 mL of a 1: 1 mixture of hexane-diethyl ether. The layers were separated and the aqueous layer was extracted with 1: 1 hexane-diethyl ether (2 x 20 mL). The combined organic layers were washed with ice cold 1 N HCl (1 x 20 ml) and brine (1 x 20 ml). The solution was dried over MgSO4, filtered and concentrated. The crude product was purified by radial chromatography (3: 1 hexane-EtOAc) to give 282 mg of the hydroxyester (plus a slight impurity) which was carried directly to the next step.
Isobutyryl chloride (0.2 mL, 1.92 mmol) was added dropwise to a stirred solution of the crude hydroxyester (282 mg, 0.48 mmol) in pyridine cooled to 0 ° C. The cooling bath was removed and the mixture was stirred for 5 hours. Water (2 ml) was added im was added and the mixture was stirred for an additional 30 minutes. The solution was extracted with ether (3 x 10 mL). The ether layer was washed sequentially with ice-cold 1 N HCl (2 x 10 mL), saturated NaHCO3 (1 x 10 mL), and brine (1 x 10 mL). The solution was dried over MgSO4, filtered and concentrated. The crude product was purified by radial chromatography (4: 1 hexane EtOAc) to afford 171 mg of isobutyryl ester 138 (23% overall over two steps).
The BOC group of this ester was removed under the standard BOC deprotection conditions described earlier to afford the desired amine 139.
PL 205 059 B1
<img file="PL205059B1_D0067.tif" />
This amine was prepared as outlined in Scheme 39. The hydroxyester 140 (M. Shimano et al., Tetrahedron, 1998, 54, 12745) (6.27 mmol) was dissolved in 15 mL of DMF and cooled to 0 ° C. To this solution was added DMAP (1.53 g, 12.53 mmol), EDCI (1.8 g, 9.40 mmol) and N-BOC-O-Bn- (L) -treonine (2.52 g, 8.15 mmol). The reaction mixture was warmed to room temperature and stirred overnight. The solution was poured into a vigorously stirred mixture of 30 ml of ice-cold 0.5 N HCl and 50 ml of a 4: 1 hexane-ether mixture. The layers were separated and the aqueous layer was extracted with 4: 1 hexane-ether (1 x 30 mL). The combined organic layers were washed with 0.5 N HCl (1 x 20 ml) and brine (2 x 20 ml). The solution was dried over MgSO4, filtered and concentrated. The crude material was chromatographed on silica gel (150 g) using 1.25 L of 3: 1 CH2Cl2-hexanes to elute anisaldehyde followed by 65:10:25 CH2Cl2-ether-hexanes to elute conjugated product 141 (3.95 g , 88%).
A mixture of benzyl ether 141 (1.32 g, 1.84 mol) and 200 mg of 10% Pd / C in 25 mL of EtOAc was shaken for 5 hours in a Parr apparatus under 50 psi of hydrogen pressure. The mixture was filtered through a pad of Celite® and concentrated to give the hydroxy acid 142 (680 mg, 70%) quite pure by NMR analysis.
Solid sodium bicarbonate (1.2 g, 14.27 mmol) was added to a stirred solution of hydroxy acid 142 (1.54 g, 2.86 mmol) and benzyl bromide (1.5 mL, 12.29 mmol) in 7 mL of DMF. The mixture was stirred at room temperature for 24 hours, then partitioned between 25 mL of water and 10 mL of 4: 1 hexanes-ether. The layers were separated and the aqueous layer was extracted with 4: 1 hexane-ether (2 x 10 mL). The combined organic layers were washed with 0.1 N NaOH (1 x 10 ml) and water (1 x 10 ml). The solution was dried over MgSO4, filtered and concentrated. The crude material was purified by radial chromatography (4: 1 hexane-EtOAc) to provide 1.04 g (60%) of the hydroxybenzyl ester 143.
To a mixed solution of ester 143 (840 mg, 1.34 mmol) and acetic anhydride (1.0 mL, 10.68 mmol) in 7 mL of pyridine was added DMAP (40 mg, 0.67 mmol). The mixture was stirred at room temperature for 4 hours and diluted with 80 mL of EtOAc. This solution was washed sequentially with saturated CuSO4 (3 x 30 ml), 1 N HCl (1 x 30 ml), saturated NaHCO3 (1 x 30 ml), and brine (1 x 30 ml). The solution was dried over MgSO4, filtered and concentrated to give 0.9 g (100%) of acetate 144, quite pure by spectral analysis. Acetate 144 was converted through similar steps as described earlier to afford the amine 145.
PL 205 059 B1
<img file="PL205059B1_D0068.tif" />
Preparation of 2,3,4-tri-o-alkyl-beta-D-xylopyranosylamine 147 c, d, e.
The synthesis of these amines is shown in Scheme 40. To a stirred solution of triacetoxy-2-azidoxylpyranosyl azide 146 (Acros Chemical Co.) in CH3OH was added 1.1 mL (1.06 mmol) of a 1.0 M solution of sodium methoxide in methanol at room temperature. The mixture was stirred overnight and neutralized 5 x with acid 8-100 resin (-0.6 g). The solution was filtered and concentrated. The resulting azidotriol 147a was used directly in the next step.
The crude triol 147a was dissolved in 15 mL of DMF, and NaH (60% dispersion, 0.53 g, 13.28 mmol) was added in four portions over 15 minutes. The mixture was stirred for 30 minutes at room temperature, allyl bromide (2.7 ml, 33.20 mmol) was added and the mixture was stirred overnight. Saturated ammonium chloride (10 mL) was carefully added followed by 50 mL of water. The aqueous solution was extracted with EtOAc (3 x 30 mL). The organic layer was washed sequentially with water (4 x 30 ml) and brine (2 x 30 ml). The solution was dried over MgSO4, filtered and concentrated. The crude material was purified by radial chromatography (6: 1 hexane-EtOAc) to afford 753 mg (77%) of the tri-On-allyl-2-azidoxylpyranose 147b.
The resulting azide and allyl groups were reduced by stirring with 150 mg of 10% Pd / C in 40 mL of EtOAc under 1 atmosphere of hydrogen for 4 hours. The resulting solution was filtered through a pad of Celite® and evaporated to afford the title amine 147c in quantitative yield.
The preparation of amine 147d was similar to that of 147c, using benzyl bromide in the alkylation step followed by reduction of the azide to the amine as described above.
A similar hydrogenation of the azide 146 with 10% Pd / C in EtOAc under 1 atmosphere of hydrogen gave the amine 147e.
Preparation of 2,3,4-tri-O-acetyl-beta-L-fucopyranosylamine (148).
<img file="PL205059B1_D0069.tif" />
To a solution of 2,3,4-tri-O-acetyl-beta-L-fucopyranosyl azide (Acros) (750 mg, 2.38 mmol) in 40 mL of EtOAc was added 120 mg of 10% Pd / C. This solution was stirred under an atmosphere of hydrogen gas (1 atm) for 3 hours. The mixture was filtered through a pad of Celite® and the layer was washed with EtOAc (25 mL). The solution was evaporated to afford the desired amine 148 (688 mg, 100%).
Preparation of 1,3,4,6-tetra-O-acetyl-2-amino-2-deoxy-alpha-D-glucopyranose (149).
<img file="PL205059B1_D0070.tif" />
PL 205 059 B1
To a solution of 1,3,4,6-tetra-O-acetyl-2-azido-2-deoxy-alpha-D-glucopyranose (TCI-US) (300 mg, 0.80 mmol) in 25 mL of EtOAc was added 180 mg 10% Pd / C. This solution was stirred under an atmosphere of hydrogen gas (1 atm) for 3 hours. The mixture was filtered through a pad of Celite® and the layer was washed with EtOAc (20 mL). The solution was evaporated to afford the desired amine 149 (282 mg, 100%).
Preparation of benzyl and methyl 3-amino-tridezoxy-L-arabino-hexopyranosides 150a and 150b.
<img file="PL205059B1_D0071.tif" />
These amines were synthesized by the method of L. Daley, et al., Synth. Commun. 1998, 28, 61.
<img file="PL205059B1_D0072.tif" />
Preparation of the amine 153.
This amine was prepared as shown in Scheme 41. [(3S, 7R, 8R, 9S) -7-benzyl-8-hydroxy-9-methyl-2,6-dioxo [1,5] -dioxonan- acid t-butyl ester 3-yl] carbamic acid (151) was prepared as described by M. Shimano et al., Tetrahedron, 1998, 54, 12745. To a stirred solution of this ester (120 mg, 0.30 mmol) in pyridine (5 ml) was slowly added methacryloyl chloride. (0.10 mL, 1.0 mmol) over 5 minutes. The resulting mixture was stirred at room temperature under N2 atmosphere overnight. The reaction mixture was partitioned between EtOAc (75 mL) and 1 N HCl (50 mL). The organic layer was washed with water then saturated NaCl, dried over MgSO4 and concentrated to a clear oil. The crude oil was chromatographed on silica gel using 30% EtOAc in hexane as eluent to give the acylated intermediate 152 (138 mg) as a clear glass. The BOC group from this intermediate was removed as described in the reference above to give the title amine 153.
PL 205 059 B1
Preparation of Antimycin A3 Aniline (154).
<img file="PL205059B1_D0073.tif" />
To a stirred solution of antimycin A3 (25 mg, 0.048 mmol) in 2.5 ml CH2Cl2 cooled to 0 ° C, pyridine (11 μΐ) and PCI were added<sub>3</sub> (27 mg, 0.13 mmol). The mixture was heated to reflux for 1.5 hours, then cooled to -30 ° C, methanol (2.5 ml) was added and the mixture was allowed to warm to room temperature and stirred overnight. The solution was poured into a mixture of 13 ml of CH 2 Cl 2 and 13 ml of saturated sodium bicarbonate at 0 ° C. The mixture was shaken in the separating funnel and the layers were separated. The aqueous layer was extracted with CH2Cl2 (2 x 5 mL) and the combined organic layers were dried (MgSO4), filtered and concentrated to afford the antimycin A3 aniline.
General procedures for coupling of amines with orthohydroxyheteroaromatic carboxylic acids to form heterocyclic aromatic amides 2.
Coupling procedure A: preparation of N- (2- (4-chlorophenyl) ethyl) -3-hydroxypyridine-2-carboxamide (233).
<img file="PL205059B1_D0074.tif" />
A stirred mixture of 3-hydroxypyridine-2-carboxylic acid (1.39 g, 0.01 mol) in dry THF (60 ml) under argon was cooled to -20 ° C. To it was added a 20% solution of phosgene in toluene (5.1 g, 0.01 mol) in one portion and the resulting mixture was stirred for 90 minutes while the temperature slowly rose to 0 ° C. The reaction mixture was then cooled to -20 ° C and a solution of diisopropylethylamine (2.58 g, 0.02 mol) in THF (20 ml) was added dropwise over 30 minutes. After the addition was complete, the mixture was stirred for an additional 2 hours allowing the temperature to slowly rise to 0 ° C. Stirring was continued at 0 ° C overnight. To this stirred mixture was added 2- (4-chlorophenyl) ethylamine (1.56 g, 0.01 mol) in one portion, and the resulting mixture was stirred at room temperature for 6 hours. The mixture was diluted with ether (100 mL), washed with 1 N HCl (100 mL), dried (MgSO4), and concentrated to give the title compound as an off-white solid (1.95 g). The mass spectrum showed the expected 3: 1 ratio of the parent ions at m / e 276 and 278.
Coupling procedure B: preparation of 3-hydroxy-4-methoxy-N- (4- (4-trifluoromethylphenoxy) -phenyl) -pyridine-2-carboxamide (425).
<img file="PL205059B1_D0075.tif" />
To a mixed solution of 4- (4-trifluoromethylphenoxy) aniline (0.20 g, 0.8 mmol) and DMAP (0.10 g, 0.085 mmol) in CH2Cl2 (10 ml) was added the 3-benzyloxy-6-chloride solution in one portion. -bromo-4-methoxypyridine-2-carbonyl (3) (0.29 g, 0.8 mmol) in CH2Cl2 (5 mL). The resulting mixture was stirred overnight at room temperature, then poured into 2N HCl (10 mL). The organic layer was separated and the aqueous layer was extracted with CH2Cl2 (2 x 10 mL). The organic layers were combined, dried (MgSO4), and concentrated to give a gummy solid. This solid was dissolved in EtOAc (20 mL) and triethylamine (0.80 g, 0.8 mmol) and 5% Pd on carbon (0.10 g) were added. The resulting mixture was subjected to a hydrogen atmosphere (initial pressure = 50 psi = 344.7 kPa (50 psi)) for 30 minutes on a Parr shaker. The mixture was filtered, washed with 0.1 N HCl (20 ml), dried (MgSO4) and concentrated to give the title compound as an off-white solid (0.14 g), mp = 122-129 ° C.
Coupling Procedure C: Preparation of N- (4-cyclohexylphenyl) -3-hydroxypyridine-2-carboxamide.
<img file="PL205059B1_D0076.tif" />
To a mixed solution of 3-hydroxypyridine-2-carboxylic acid (prepared from compound 16 by catalytic hydrogenation in the presence of Pd / C as previously described) (0.42 g, 3 mmol) and 4-cyclohexylaniline (0.35 g, 2 mmol) ) in dry DMF (5 ml) 1-hydroxybenzotriazole (0.48 g), EDCI (0.65 g) and N-methylmorpholine (1.41 g) were successively added. An additional amount of DMF (5 ml) was added and the reaction mixture was stirred at room temperature overnight. The mixture was poured into water (200 ml) then extracted with EtOAc (2 x 75 ml). The organic extracts were combined, washed with water (100 mL) and saturated NaCl (50 mL), dried (MgSO4), and concentrated. The crude oil which solidified on standing was chromatographed on silica gel (4: 1 petroleum ether-EtOAc) to give the title compound (0.42 g) as a tan solid, mp 91-93 ° C.
Modification of heterocyclic aromatic amides to other heterocyclic aromatic amides. Preparation of 4-Hydroxythiophene-N- (3,3,5,5-tetramethylcyclohexyl) -3-carboxamide (554).
<img file="PL205059B1_D0077.tif" />
4-Methoxythiophenecarboxylic acid and 3,3,5,5-tetramethylcyclohexylamine were coupled together following the general coupling procedure C previously described to give 4-methoxythiophene-N- (3,3,5,5-tetramethylcyclohexyl) -3-carboxamide.
A solution of 500 mg of this methoxythiopheneamide in 15 ml of chloroform was stirred under a drying tube in a dry ice-acetone bath for 5 minutes. To this solution, a solution of 940 mg of boron tribromide (2 eq.) In 10 ml of chloroform was added dropwise over 15 minutes. Stirring was continued while the reaction mixture was warmed to room temperature, then overnight. The reaction mixture was then placed in a cold water bath and 15 ml of water was added dropwise. After stirring for 15 minutes, the mixture was diluted with 50 mL of CH2Cl2 and the organic layer was separated. The aqueous layer was washed with 50 mL of CH2Cl2. The combined organic extracts were washed with 25 ml of water and saturated saline solution and dried. The extract was filtered and concentrated. The residue was chromatographed on silica gel with CH2Cl2-5% EtOAc as eluent to give 310 mg of the title compound as brown crystals, mp 170-174 ° C. A sample was recrystallized from EtOAc petroleum to give brown needles, mp 171-173 ° C.
PL 205 059 B1
<img file="PL205059B1_D0078.tif" />
These intermediates were prepared as outlined in scheme 42.
To a mixed solution of (±) -serine isopropyl ester hydrochloride (2.75 g) and triethylamine (3.55 g) in CH 2 Cl 2 (75 ml) was added a solution of 3-benzyloxy-6-bromo-4-methoxypyridine chloride over 5 minutes. 2-carbonyl (3) (5.32 g) in CH2Cl2 (15 ml). The mixture was stirred for 30 minutes at room temperature, then poured into 1 N HCl (75 mL). The organic layer was separated, washed with water (25 ml), dried (Na2SO4) and the solvent was evaporated to give a yellow gum (6.7 g). This material can be recrystallized from ether / hexane to afford Compound 155a as a white solid, mp 100-103 ° C. In a similar procedure, the intermediate methyl ester 155b was obtained from (±) -serine hydrochloride methyl ester.
To a mixed solution of compound 155a (1.17 g), triethylamine (0.31 g) and DMAP (0.06 g) in CH<sub>2</sub>CI<sub>2</sub> (25 ml) .alpha.-methylhydrocinnamoyl chloride (0.46 g) was added in one portion. The resulting mixture was stirred for 4 hours at room temperature, then poured into 2N HCl (15 mL). The organic phase was separated, washed with 1N NaOH (15 ml), dried (MgSO4) and the solvent evaporated to give 156a as a yellow oil (1.45 g). NMR (CDCl3) of this oil corresponded to a 1: 1 mixture of diastereomers.
A solution of 3- (t-butyldimethylsilyloxy) butyryl chloride (3.55 g) (prepared from the corresponding t-butyldimethylsilyl ester by the method of A. Wissner and CV Grudzinskas, J. Org. Chem., 1978, 43, 3972), in CH2Cl2 (10 ml) was added vigorously to a cold (0 ° C), stirred solution of compound 155b (6.6 g) and DMAP (0.18 g) in dry pyridine (25 ml). The reaction mixture was stirred for 15 minutes at 0 ° C, then at room temperature for three hours. After diluting with ether (200 ml), the mixture was extracted with water (2 x 100 ml), dried (MgSO4) and the solvent was evaporated. Toluene (25 ml) was added to the residue and the solvent was evaporated again. The yellow oily residue was purified by chromatography (silica gel, 7: 3 hexane / acetone) to afford 156b as a mixture of diastereomers.
To a mixed solution of 2-benzyl-3- (t-butyldimethylsilyloxy) propionic acid (7.36 g) (NP Peet, NL Lentz, MW Dudley, AML Ogden, DE McCarty, and MM Racke, J. Med. Chem., 1993 , 36, 4015) in DMF (20 mL) was added t-butyldimethylsilyl chloride (4.52 g) in one portion, followed by imidazole (4.1 g), and the resulting mixture was stirred at room temperature for 24 hours. The mixture was diluted with water (300 ml) then extracted with pentane (3 x 100 ml). The pentane phase was washed with water, dried (Na2SO4) and the solvent was evaporated to give a colorless oil (9.5 g). NMR (CDCl3) of this oil corresponded to a mixture of diastereomers. The ester (4.1 g) was converted to the corresponding acid chloride according to the method of NP Peete, et al., J. Org. Chem., 1978, 43,
PL 205 059 B1
3972. This acid chloride was condensed with compound 155b (4.4 g) as described above to give the desired compound 156c after chromatography on silica gel (4: 1 hexane / acetone) as a mixture of diastereomers.
Concentrated HCl (1.5 ml) was added to a stirred solution of 156c (4.5 g) in methanol (35 ml). The resulting mixture was stirred at room temperature for 30 minutes, diluted with water (200 mL) then extracted with CH2Cl2 (2 x 100 mL). The organic phase was dried (MgSO4) and the solvent was evaporated. The residue was purified by silica gel chromatography (7: 3 hexane / acetone) to give 156d as a pale yellow gum (2.8 g). NMR (CDCl3) showed it was a mixture of diastereomers.
Compounds 156 ad were converted to the corresponding deprotected heterocyclic aromatic amides by hydrogenation in the presence of Pd / C as previously described.
<img file="PL205059B1_D0079.tif" />
Preparation of intermediate 158.
The synthesis of this intermediate is shown in Scheme 43. Amide 157 was prepared from (+) - trans-1-hydroxy-2-aminocyclopentane hydrobromide (7.09 g, 38.9 mmol) and 3-benzyloxy-6-bromo-4-chloride. methoxypyridine-2-carbonyl (3) (13.8 g, 38.9 mmol) in CH2Cl2 (150 ml) according to the general coupling procedure B and purified by flash chromatography using 1: 1 hexanes-EtOAc as eluent. This provided compound 157 (13.4 g) as a white solid, mp 56-57 ° C.
Dimethyl sulfoxide (7.4 mL, 104.1 mmol) was slowly added to a solution of oxalyl chloride (4.54 mL, 52.08 mmol) in CH 2 Cl 2 (100 mL) at -78 ° C, followed by a solution of the amide 157 ( 10.46 g, 24.8 mmol) in CH2Cl2 (25 mL). After 30 minutes, Et3N was added and the solution was slowly warmed to room temperature. The mixture was poured into saturated NH 4 Cl (100 ml) and extracted with CH 2 Cl 2 (2 x 100 ml). The combined organic layers were washed with brine, dried and the solvent was evaporated. The residue was purified by column chromatography using 1: 1 EtOAc-hexane as the eluent to give the ketone 158 (9.64 g, 94%) pure by GC / MS and <sup>1</sup>H-NMR.
Compounds 157 and 158 were converted to the corresponding deprotected heterocyclic aromatic amides by hydrogenation in the presence of Pd / C as previously described.
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<img file="PL205059B1_D0080.tif" />
Preparation of intermediates 160 ad.
These intermediates were prepared as outlined in Scheme 44. Coupling of serinol with 3-benzyloxy-6-bromo-4-methoxypicolinic acid (16) following general coupling procedure C gave 1,3-diol 159 as a colorless oil, pure according to spectra. <sup>1</sup>H, <sup>13</sup>C-NMR and IR.
1,3-Diol 159 (1 mmol) was condensed with the corresponding carbonyl compound (2 mmol) or the corresponding dimethyl acetal (2 mmol) by refluxing in benzene (20 ml / mmol) in the presence of a catalytic amount of p-toluenesulfonic acid (0.1 mmol) in a Dean-Stark apparatus.
Thus, condensation of compound 159 and 1,3,3-trimethoxypropane provided acetal 160a as a 2: 1 mixture of syn and anti diastereomers. Mass spectrum (ES) indicated [M +] at (m / e) 495 and 497. Spectra<sup>1</sup>H-, <sup>13</sup>C-NMR and IR were consistent with structure 160a.
Condensation of 159 and 2-methyl-3- (4-t-butyl) phenylpropanone gave acetal 160b as a mixture of
3: 1 syn and anti diastereomers. Mass spectrum (ES) indicated [M +] at (m / e) 597. Spectra<sup>1</sup>H, <sup>13</sup>C-NMR and IR were consistent with structure 160b.
Condensation of compound 159 and dihydro-e-ionone gave acetal 160c as a 2: 1 mixture of 13 syn and anti diastereois. Mass spectrum (EI) indicated [M +] at (m / e) 587. Spectra<sup>1</sup>H, <sup>13</sup>C-NMR and IR were consistent with structure 160c.
Condensation of compound 159 and 3,3,5,5-tetramethylcyclohexanone gave acetal 160d, consistent with the spectra <sup>1</sup>H, <sup>13</sup>C-NMR and IR.
Intermediates 160 ad were converted to the corresponding deprotected heterocyclic aromatic amides by hydrogenation in the presence of Pd / C as previously described.
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<img file="PL205059B1_D0081.tif" />
Scheme 45 describes the preparation of these compounds. Thus, 2,3,6,6-tetramethyl-2-cycloheptenylamine was first coupled to 2-hydroxy-3-methoxy-2-picolinic acid using standard C coupling procedure, yielding intermediate 161. Dichlorination of compound 161 according to the Tetrahedron Lett procedure 1991, 32, 1831-1834, gave the dichloro derivative 281. Standard oxidation of 161 with m-CPBA in CH2Cl2 gave epoxy analog 162 containing an N-oxide which upon treatment with H2 (310.34 kPa ((45 psi)) and 10% Pd / C under standard catalytic hydrogenation conditions to form compound 280.
<img file="PL205059B1_D0082.tif" />
Preparation of trans-4-hydroxy-3,3,5,5-tetramethylpicolinamide (264).
This compound was prepared as shown in Scheme 46. Sodium borohydride (20 mg, 0.53 mmol) was added to a stirred solution of ketopicolinamide 266 (56 mg, 0.18 mmol) in 2 mL of methanol. The mixture was stirred for 5 hours and the methanol was evaporated. The crude material was diluted with 5 mL of water and extracted with EtOAc (3 x 5 mL). The organic layer was washed with water (1 x 5 ml) and brine (1 x 5 ml). The solution was dried over MgSO4, filtered and concentrated. NMR and GC analyzes were consistent with the title compound 264, trans stereochemistry 95% pure.
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<img file="PL205059B1_D0083.tif" />
341
Scheme 47
Preparation of compound 341.
The preparation of this compound is described in Scheme 47. The precursor, benzyl ester 139 (Scheme 38) (33 mg, 0.046 mmol) was dissolved in 10 mL of EtOAc and 110 mg of Pearlman's catalyst was added. The mixture was shaken on a Parr apparatus under 50 psi hydrogen pressure for 12 hours. The solution was then filtered and concentrated. The residue was dissolved in the minimum amount of ether and petroleum ether was added until a precipitate was formed. The solid was collected by filtration and dried to give the title compound 341.
Preparation of N- (3-hydroxy-4-methoxy-2-pyridylcarbonyl) -2-amino-2-deoxy-alpha-D-glucopyranose (334).
<img file="PL205059B1_D0084.tif" />
1,3,4,6-Tetra-O-acetyl-2-amino-2-deoxy-alpha-D-glucopyranose (151) and 3-hydroxy-4-methoxypicolinic acid were coupled together using standard C coupling procedure. a solution of the resulting picolinamide (0.19 g, 0.38 mmol) in 6 mL of methanol was added lithium hydroxide monohydrate (0.92 mmol, 40 mg). The reaction mixture was stirred at room temperature overnight. The solution was neutralized by adding an acidic DOWEX resin<sup>®</sup> 5 x 8-100 (0.5 g). The mixture was filtered and concentrated to afford the title compound (110 mg, 88%).
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<img file="PL205059B1_D0085.tif" />
166a: R = c-Pr 166b: R = i-PrNH 166c: R = i-PrO
Scheme 48
General procedure for the preparation of exocyclic ester 166a, carbamate 166b and carbonate 166c.
These compounds were generally prepared as outlined in scheme 48, starting from amine 164, prepared according to the procedures of M. Shimano, et al., Tetrahedron, 1998, 54, 12745. This amine was coupled with 3-benzyloxy-6-bromo-4-methoxy-picolinic acid 16 by the standard C coupling procedure described earlier, then the resulting intermediate 165 was reacted with an appropriate carboxylic acid chloride, alkyl isocyanate, or alkyl chloroformate in the presence of a base. to give the desired protected ester 166a, carbamate 166b or carbonate 166c, respectively. Deprotecting these compounds according to the procedures described previously using H 2 in the presence of Pd / C gave the desired ester, carbamate or carbonate. The above steps were used to prepare other analogous esters, carbamates and carbonates.
Manufacture 166a.
To a stirred solution of compound 165 (180 mg, 0.29 mmol) in pyridine (10 mL) was added slowly over 5 minutes cyclopropanecarbonyl chloride (0.45 mL, 5 mmol). The mixture was allowed to stir under N2 atmosphere at room temperature overnight. The resulting mixture was poured into 1 N HCl (30 mL) and extracted with EtOAc (2 x 75 mL). The organic layers were combined and washed with water (25 mL) then saturated NaCl (25 mL), dried over MgSO4, and concentrated to give an orange oil. The crude oil was chromatographed on silica gel, eluting with a gradient of 30% to 50% EtOAc in hexane to afford the title compound 166a (100 mg) as a clear oil.
Manufacture 166b.
To a stirred solution of compound 165 (200 mg, 0.33 mmol) in CH2Cl2 (5 mL) was added triethylamine (2 drops), DMAP (1 mg), and isopropyl isocyanate (0.2 mL, 2 mmol). The resulting mixture was stirred under a nitrogen atmosphere at room temperature overnight. The reaction mixture was poured into 1 N HCl (25 mL) and extracted with EtOAc (2 x 50 mL). The organic layers were combined and washed with water, then saturated NaCl, dried over MgSO4, and concentrated to give a pink foam. The crude foam was chromatographed on silica gel, eluting with a gradient of 30% to 50% EtOAc in hexane to give the title compound 166b (90 mg) as a white solid.
Manufacture 166c.
A stirred solution of compound 165 (180 mg, 0.29 mmol) in pyridine (5 mL) and CH 2 Cl 2 (5 mL) was cooled to 0 ° C in an ice bath under nitrogen. Isopropyl chloroformate (1 M in toluene, 5 mL) was slowly added to the cooled mixture over 1 minute. The ice bath was removed and the mixture
The mixture was stirred at room temperature overnight. The reaction mixture was partitioned between 1 N HCl (25 mL) and EtOAc (75 mL). The organic layer was washed with water then saturated NaCl, dried over MgSO4 and concentrated to a clear oil. The crude oil was chromatographed on silica gel eluting with a gradient of 30% to 50% EtOAc in hexane to afford the title compound
<img file="PL205059B1_D0086.tif" />
The diastereomeric amine mixture 53 obtained as described previously (Scheme 9) was coupled with the acid chloride 3 in the General Coupling Procedure A previously described (Scheme 49) to give a mixture of diastereomers 167 and 168. They were separated by careful silica gel chromatography (85:15 hexane / acetone) to give pure compounds 167 and 168, each in about 35% yield. They were deprotected with H 2 in the presence of Pd / C as previously described.
General procedures for the conversion of heterocyclic aromatic amides (2) to O-acyl heterocyclic aromatic amides (2Y: M = acyl), O-silyl heterocyclic aromatic amides (2Y: M = silyl) and O-sulfonyl heterocyclic aromatic amides (2Y: M = sulfonyl ).
<img file="PL205059B1_D0087.tif" />
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Preparation of O- (3,3-dimethyl) butanoyl compound 610.
The preparation of this compound is outlined in Scheme 50, starting from compound 169 (prepared according to the procedure of M. Shimano, et al., Tetrahedron 1998, 54, 12745). Thus, a mixed solution of compound 169 (100 mg, 0.19 mmol) and DMAP (5 mg, 0.04 mmol) in anhydrous pyridine (5 mL) was treated with 3,3-dimethylbutanoyl chloride, and the mixture was stirred at ambient temperature for 5 , 5 hours. It was then treated with water (15 ml) and extracted with EtOAc (20 ml). The organic extract was washed sequentially with water and saturated aqueous NaHCO3 solution, dried (Na2SO4), filtered and concentrated. Chromatography on preparative silica gel plates (2 mm thick), eluting with ether, gave the title compound as an off-white solid, mp 151-152 ° C. Data<sup>1</sup>H-NMR and MS were consistent with the assigned structure.
Other O-acyl heterocyclic aromatic amides were prepared with variations in the above procedure. Such variations include, for example, purification of products by other techniques well known to those skilled in the art, such as column chromatography or recrystallization.
Preparation of Ot-butyldimethylsilyl compound 720.
The preparation of this compound is described in Scheme 50. Thus, a mixed solution of compound 169 (100 mg, 0.19 mmol) and N-methylmorpholine (0.13 mL, 1.18 mmol) in anhydrous DMF (2 mL) was treated with t- butyldimethylsilyl (57 mg, 0.38 mmol), and the mixture was stirred at ambient temperature for 1 day. The resulting mixture was partitioned between water (10 mL) and EtOAc (15 mL), and the organic phase was washed sequentially with saturated aqueous NaHCO3 solution and brine, dried (Na2SO4), filtered, and concentrated. The residue is chromatographed on a silica gel column, eluting with ether to give 74 mg of the title compound as a clear lubricant. Spectrum<sup>1</sup>H-NMR was consistent with the assigned structure.
Preparation of Op-toluenesulfonyl Compound 722.
The preparation of this compound is described in Scheme 50. Thus, p-toluenesulfonyl chloride (90 mg, 0.466 mmol) was added to a stirred suspension of compound 169 (200 mg, 0.388 mmol) and potassium carbonate (65 mg, 0.466 mmol) in anhydrous acetone (3 ml). After stirring at ambient temperature for 12 hours, the mixture was diluted with EtOAc (25 mL) and washed with H 2 O (2 x 10 mL). The organic phase was dried (MgSO4), filtered and concentrated in vacuo. The residue was purified by flash column chromatography eluting with hexanes-EtOAc (1: 1) to give 197 mg of a white solid, mp 153-155 ° C, the spectrum of which is <sup>1</sup>H-NMR was consistent with the desired title compound.
Table I illustrates additional compounds of formula I made from the appropriate starting materials by the above-described procedures. Spectral data<sup>1</sup>H-NMR for all these compounds was consistent with the assigned structures.
Fungicidal application
The compounds of the present invention have been shown to control fungi, especially plant pathogens and wood-destroying fungi. When used to control plant mycoses, the compounds are applied to the plants in a disease-inhibiting and phytologically acceptable amount. Treatments can be carried out before and / or after fungal infestation of the plants. Treatments can also be carried out by treating plant seeds, the soil in which plants are growing, rice fields for seedlings, or water for watering. Other treatments may include impregnation of the wood to combat the deterioration of the wood and / or wood products.
The term disease-inhibiting and phytologically acceptable amount as used herein refers to an amount of a compound of the present invention that kills or inhibits a plant pathogen and prevents, removes or stops a plant disease that is desired to be controlled, which amount is not substantially toxic to the plant. This amount will generally be from about 1 to 1000 ppm, preferably 10 to 500 ppm. The exact concentration of the compound required depends on the mycosis to be controlled, the type of preparation used, the type of treatment applied, the specific plant species, climatic conditions, and other factors. A suitable amount applied is typically in the range of about 50 to about 1000 g per hectare (g / ha).
The compounds of the invention can also be used to protect stored grain and other non-plant sites against fungal infestation.
The following experiments were carried out in the laboratory to determine the fungicidal efficacy of the compounds according to the invention.
In vitro biological evaluation of fungal growth inhibition.
Growth conditions: Conidia suspensions of fungi or mycelial fragments are prepared in sterile potato dextrose broth (Difco) for Magnaporthe grisea (Pyricularia oryzae - PYRIOR),
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Rhizoctonia solani (RHIZSO), Mycosphaerella graminicola (Septoria tritici - SEPTTR), Stagonospora nodorum (Leptosphaeria nodorum - LEPTNO), Ustilago maydis (USTIMA), and in rice grain broth for Phytophthora infestans (PHYTIN). The suspensions are pipetted onto sterile 96-well microtiter plates containing samples of experimental fungicides dissolved in dimethylsulfoxide. The fungicide concentration ranges from 0.001 to 100 ppm with the final solvent concentration not exceeding 1% of the medium. The fungi are propagated for various times at 24 to 30 ° C until the solvent-only control wells become cloudy due to the growth of the fungi. At this time, the inhibition of growth is determined by visual inspection of each well, and the percent inhibition of growth as compared to the solvent treated controls is determined.
In Table II + indicates that the test substance caused at least 80% growth inhibition, and - indicates less than 80% growth inhibition of the indicated pathogen when introduced into the growth medium at a concentration of 25 ppm. A blank space indicates that the test was not performed.
In vivo biological evaluation of the control of fungal infection of whole plants.
Compound formulation was accomplished by dissolving the technical materials in acetone, and performing further serial dilutions in acetone to obtain the desired concentrations. Final treatment volumes were obtained by adding 9 volumes of 0.05% aqueous Tween-20 or 0.01% Triton X-100, depending on the pathogen.
Grapevine downy mildew (Plasmopara viticola - PLASVI) (protection after 24 hours): Grapevines (Carignane variety) were grown from seeds in a soilless peat pot mixture (Metromix) until the seedlings were 10-20 cm high. These plants were then sprayed to run-off point with the test compound at a dose of 100 ppm. After 24 hours, the test plants were contaminated by spraying with an aqueous suspension of Plasmopara viticola sporangia and kept in the spray chamber overnight. The plants were then transferred to a greenhouse until disease developed on untreated controls.
Tomato potato blight (Phytophthora infestans - PHYTIN) (24-hour protection): Tomatoes (Rutgers variety) were grown from seed in a soilless peat pot mix (Metromix) until the seedlings were 10-20 cm high. These plants were then sprayed to run-off point with the test compound at a dose of 100 ppm. After 24 hours, the test plants were contaminated by spraying with an aqueous suspension of Phytophthora infestans spores and kept in the spray chamber overnight. The plants were then transferred to a greenhouse until disease developed on untreated controls.
Wheat brown rust (Puccinia recondita - PUCCRT) (protection after 24 hours): Wheat (variety Yuma) was grown in a soilless peat pot mix (Metromix) until the seedlings were 10-20 cm high. These plants were then sprayed to run-off point with the test compound at a dose of 100 ppm. After 24 hours, the test plants were contaminated by spraying with an aqueous spore suspension of Puccinia recondita, and kept in the spray chamber overnight. The plants were then transferred to a greenhouse until disease developed on untreated controls.
Wheat powdery mildew (Erysiphe graminis - ERYSGT) (protection after 24 hours): Wheat (Monon variety) was grown in a soilless peat pot mix (Metromix) until the seedlings were 10-20 cm high. These plants were then sprayed to run-off point with the test compound at a dose of 100 ppm. After 24 hours, the test plants are contaminated by conidia dusting from powdery mildew infected wheat plants. The plants were then transferred to a greenhouse until disease developed on untreated controls.
Wheat septoriosis (Septoria tritici - SEPTTR) (protection after 24 hours): Wheat (variety Yuma) was grown in a soilless peat pot mix (Metromix) until the seedlings were 10-20 cm high. These plants were then sprayed to run-off point with the test compound at a dose of 100 ppm. After 24 hours, the test plants were contaminated by spraying with an aqueous spore suspension of Septoria tritici, and kept in the spray chamber overnight. The plants were then transferred to a greenhouse until disease developed on untreated controls.
Wheat Leptosporiasis (Leptosphaeria nodorum - LEPTNO) (protection after 24 hours): Wheat (Yuma variety) was grown in a soilless peat pot mix (Metromix) until the seedlings were 10-20 cm high. These plants were then sprayed to run-off with the test compound at 100 ppm. After 24 hours, the test plants were contaminated by spraying with an aqueous spore suspension of Leptosphaeria nodorum, and kept in the spray chamber overnight. The plants were then transferred to a greenhouse until disease developed on untreated controls.
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In Table II ++ it indicates that the test substance caused at least 75-100% control of fungal infection compared to disease occurrence on untreated plants, + indicates that the test substance caused 25-74% control of fungal infection, and - indicates < 25% combating a fungal infection of a specific pathogen at a concentration of 100 ppm. A blank space indicates no testing.
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 201</td><td>and"- 0</td><td>yellow oil</td><td> 264</td><td></td>
<td> 202</td><td>ęę «jO ABOUT</td><td>pale yellow oil</td><td> 234</td><td></td>
<td> 203</td><td>ęę<sub>ABOUT</sub></td><td>a pale yellow solid</td><td></td><td> 63-64</td>
<td> 204</td><td></td><td>white solid</td><td> 302</td><td></td>
<td> 205</td><td></td><td>white body Solid</td><td> 290</td><td></td>
<td> 206</td><td> 0</td><td>oily white solid</td><td> 272</td><td></td>
<td> 207</td><td>about</td><td>yellow oil</td><td>2S6</td><td></td>
<td> 208</td><td></td><td>colorless fine needles</td><td></td><td> 112-115</td>
<td> 209</td><td></td><td>colorless crystals</td><td></td><td> 123-126</td>
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Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (<sup>e</sup>C)</td>
<td> 210</td><td></td><td>colorless crystals</td><td> •</td><td> 139-142</td>
<td> 211</td><td></td><td>colorless crystals</td><td></td><td> 154-157</td>
<td> 212</td><td> ^9-0°</td><td>white solid</td><td></td><td> 131-132</td>
<td> 213</td><td>^ y, OH Wo-.</td><td>brown solid</td><td> 248,250</td><td></td>
<td> 214</td><td></td><td>yellow solid</td><td> 282</td><td></td>
<td> 215</td><td></td><td>orange-biafc solid</td><td> 242</td><td></td>
<td> 216</td><td>OHM*</td><td>And a dirty white solid</td><td></td><td> 127-129</td>
<td> 217</td><td>ζ-Φηχτ ·</td><td>brown solid</td><td></td><td> 131-133</td>
<td> 218</td><td>oę »jQ o α</td><td>dirty white solid</td><td></td><td> 97-99</td>
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Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (* C)</td>
<td> 219</td><td></td><td>State body bradnobiais</td><td></td><td>S5-6?</td>
<td> 229</td><td>oeur about</td><td>bmdnohiate body stefe</td><td></td><td> 55-97</td>
<td> 221</td><td>cę »j3:</td><td>stele body encasing</td><td></td><td> 100-101</td>
<td> 222</td><td>Q3u0k about</td><td>pale yellow oil</td><td> 242</td><td></td>
<td> 223</td><td>fume</td><td>white solid</td><td></td><td> 83-94</td>
<td> 224</td><td></td><td>white eiate state</td><td></td><td> 75-78</td>
<td>22S</td><td>about</td><td>Kafc is fixed</td><td></td><td> 41-43 .</td>
<td> 226</td><td>oolor</td><td>white eiate state</td><td></td><td>SS-97</td>
<td> 22?</td><td></td><td>white body constantly</td><td></td><td> 78-79</td>
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Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 228</td><td>ABOUT</td><td>white solid</td><td></td><td> 106-109</td>
<td> 229</td><td>oyo</td><td>white solid</td><td></td><td> 89-91</td>
<td> 230</td><td>οφχ</td><td>yellow oil</td><td></td><td></td>
<td> 231</td><td>oe «5) about ·</td><td>orange-oil</td><td>2S2</td><td></td>
<td> 232</td><td> 0 *</td><td>orange oil</td><td> 292</td><td></td>
<td> 233</td><td>about</td><td>dirty white solid</td><td> 276,278</td><td></td>
<td> 234</td><td></td><td>yellow oil</td><td> 270</td><td></td>
<td> 235</td><td>«Λ y = ź X<sup>33</sup>. o> = 0</td><td>brown solid</td><td> 221</td><td></td>
<td> 236</td><td></td><td>colorless crystals</td><td></td><td> 42-45</td>
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Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 237</td><td>ιΛτ<sup>0Η</sup> k X. cK o 5</td><td>colorless solid</td><td></td><td> 122-134</td>
<td> 238</td><td>IN</td><td>colorless needles</td><td></td><td> 105-107</td>
<td> 239</td><td>OHM" about</td><td>dirty white fluffy crystals</td><td> 254, 256</td><td></td>
<td> 240</td><td>OMe JU about</td><td>yellow fluffy crystals</td><td> 282</td><td></td>
<td> 241</td><td>OMe about</td><td>brown solid</td><td> 304</td><td></td>
<td> 242</td><td>OMe ABOUT *</td><td>golden syrup</td><td> 304</td><td></td>
<td> 243</td><td>OMe about</td><td>brown powder</td><td> 287</td><td></td>
<td> 244</td><td>OMe Oh ^ oh o α</td><td>yellow resin</td><td> 436</td><td></td>
<td> 245</td><td>OMe ABOUT</td><td>colorless oil</td><td></td><td></td>
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Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 246</td><td>OMe</td><td>State's dirty white body</td><td></td><td> 140-142</td>
<td> 247</td><td>OMe άχο</td><td>State yellow body</td><td> 340</td><td></td>
<td> 248</td><td>OHM· Oy</td><td>yellow oil</td><td>M + 1 253</td><td></td>
<td> 249</td><td>OMe</td><td>thick yellow oil</td><td> 250</td><td></td>
<td> 250</td><td>OHM· Ar<sup>08</sup><sup>0</sup> *><</td><td>dirty white solid</td><td></td><td> 104-106</td>
<td> 251</td><td>OMe</td><td>amber oil</td><td></td><td></td>
<td> 252</td><td>ΟΜΘ</td><td>yellow chip</td><td></td><td></td>
<td> 253</td><td></td><td>clear gel</td><td></td><td></td>
<td> 254</td><td>OMe</td><td>yellow gel</td><td></td><td></td>
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Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 255</td><td>ΟΜβ i</td><td>white powder</td><td> 340</td><td></td>
<td> 255</td><td>OMe about</td><td>white solid</td><td></td><td></td>
<td> 257</td><td>OHM· J \ x ° n Vx. <sup>those</sup></td><td>Oil</td><td> 433</td><td></td>
<td> 258</td><td>bed ^</td><td>resin</td><td>M * 1 345</td><td></td>
<td> 259</td><td></td><td>resin</td><td>M + 1 341</td><td></td>
<td> 260</td><td>OMe O (X »<yo</td><td>white solid</td><td> 396</td><td> 147-149</td>
<td> 261</td><td>OMe O ł ee = 4 · -</td><td>her pale oil</td><td>M + 1 421</td><td></td>
<td> 262</td><td>OMe O</td><td>white solid</td><td>M + 1 454</td><td> 59-60</td>
<td> 263</td><td>OMe Fr.</td><td>dirty white foam</td><td>M + 1 454</td><td></td>
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Table I.
<td>——- ί— · - Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>. Melting point</td>
<td> 264</td><td>OMe</td><td>white solid</td><td> 322</td><td></td>
<td>2SS</td><td></td><td>yellow oil</td><td></td><td></td>
<td> 266</td><td>ę »<^</td><td>white solid</td><td> 362</td><td></td>
<td> 267</td><td></td><td>biaftarplantt</td><td></td><td></td>
<td> 268</td><td>o «a Cy ^</td><td>white solid</td><td> 426</td><td> 175-200</td>
<td> 268</td><td>δχ £ Λ><sup>ο</sup></td><td>white solid</td><td> 461</td><td> 55-65</td>
<td> 270</td><td>OMe Φγ ^ Ο ^ -Ο- ^ about</td><td>brndwhite solid</td><td></td><td>168-172 (dec.)</td>
<td> 271</td><td>OMe oh ^ ooo ^, about</td><td>dirty white eiafo solid</td><td></td><td>181483 (dec.)</td>
<td> 272</td><td>OHM· <\ <X</td><td>dirty white solid</td><td> 535</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 273</td><td>OMe</td><td>white solid</td><td> 297</td><td> 113-115</td>
<td> 274</td><td>OMe</td><td>white solid</td><td> 427</td><td></td>
<td> 275</td><td>OHM· Cę «oo about</td><td>yellow gel</td><td> 358</td><td></td>
<td> 276</td><td>y * ·, θ r ^ ii CjC ^<sup>H.</sup></td><td>colorless gel</td><td> 438</td><td></td>
<td> 277</td><td>OMe</td><td>resin</td><td> 306</td><td></td>
<td> 278</td><td></td><td>pale yellow oil</td><td> 302</td><td></td>
<td> • 279</td><td></td><td>resin</td><td> · 318</td><td></td>
<td> 280</td><td>OMe X ^ oh 3 < in%></td><td>white foam</td><td> 334</td><td></td>
<td> 281</td><td>OMe</td><td>white foam</td><td>M-1 388</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular <M)</td><td>Point melting (° C)</td>
<td> 282</td><td>OMe</td><td>pale yellow oil</td><td> 278</td><td></td>
<td> 283</td><td>OMe</td><td>clear oil</td><td></td><td></td>
<td> 284</td><td></td><td>solid</td><td></td><td> 122-128</td>
<td> 285</td><td>OHM·</td><td>brown-solid</td><td></td><td> 174-179</td>
<td> 286</td><td>OMe</td><td>thick colorless oil</td><td> 384</td><td></td>
<td> 287</td><td>OMe</td><td>white solid</td><td> 262</td><td></td>
<td> 288</td><td>OMe</td><td>pale yellow body</td><td> 304</td><td></td>
<td> 289</td><td>OMe<sup>1</sup>OHM* about</td><td>yellow resin</td><td> 384</td><td></td>
<td> 290</td><td></td><td>white solid</td><td> 310</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 291</td><td></td><td>dark brown oil</td><td> 316</td><td></td>
<td> 292</td><td>OHM* H.</td><td>doughy yellow flesh steadily</td><td> 344</td><td></td>
<td> 293</td><td>OHM· Vsp</td><td>white solid</td><td></td><td>143-160 (dec.)</td>
<td> 294</td><td>OHM· ^ 'X ^ ł> *'<sub>about</sub>-~^<sup>zs</sup>5s<sub>r</sub>- CF,<sup>0</sup> V</td><td>yellow resin</td><td> 450</td><td></td>
<td> 29$</td><td>OHM· ^<sup>κ</sup>Α ° χΡ</td><td>colorless resin</td><td> 450</td><td></td>
<td> 29$</td><td>OMe ABOUT</td><td>colorless resin</td><td> 450</td><td></td>
<td> 297</td><td>OMe a ^ oh ^ ν · ΧΤ "</td><td>yellow resin</td><td> 450</td><td></td>
<td> 298</td><td>OHM· OHM*</td><td>yellow resin</td><td> 348</td><td></td>
<td> 239</td><td>ΟΜ -<sup>0</sup> Ζά (mixture) \ /</td><td>pale yellow resin</td><td> 439</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 300</td><td>OMe</td><td>white solid</td><td> 439</td><td></td>
<td> 301</td><td>about *</td><td>colorless resin</td><td> 510</td><td></td>
<td> 302</td><td>OMa</td><td>white solid</td><td> 304</td><td></td>
<td> 303</td><td>OHM· Γ I <sup>H.</sup> y? \ about</td><td>white foam solid</td><td> 401</td><td></td>
<td> 304</td><td></td><td>brown glass</td><td> 294, 296</td><td></td>
<td> 305</td><td>^ x-<sup>0H</sup>om r if (V<sup>H.</sup>«” ° ° πτω</td><td>white solid</td><td></td><td> 145-147</td>
<td> 306</td><td>OMe</td><td>white solid</td><td> 356</td><td> 150-152</td>
<td> 307</td><td>0- ΓΓ ^ ΟΗ OM · HO ^ O Γ Aj- ™ <sub>HO</sub>X<sub>ABOUT</sub>°</td><td>white solid</td><td></td><td> 168-170</td>
<td>30S</td><td>OHM· AND". ABOUT</td><td>amber glass</td><td> 356</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 309</td><td>OMe Φρ n 0 ΧζΝγχΛ / ABOUT</td><td>sticky oil</td><td> 384</td><td></td>
<td> 310</td><td>OMe</td><td>glass</td><td> 252</td><td></td>
<td> 311</td><td>OMe X ° H "Br Λ-ςτο</td><td>white solid</td><td> 356</td><td> .156-158</td>
<td> 312</td><td>OMe</td><td>oil and</td><td> 370</td><td></td>
<td> 313</td><td>OMe Xro</td><td>Oil</td><td> 370</td><td></td>
<td> 314</td><td>OMe XX- 0</td><td>light brown resin</td><td> 296</td><td></td>
<td>31S</td><td>OMe</td><td>white solid</td><td> 379</td><td></td>
<td> 316</td><td>OMe about</td><td>white solid</td><td>M + 1 429</td><td></td>
<td> 317</td><td>OHM· o °</td><td></td><td> 428</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (* C)</td>
<td> 318</td><td>OHM·</td><td>resin</td><td> 418</td><td></td>
<td> 319</td><td>OMe <sub>K.</sub><W5> 0</td><td>white solid</td><td> 418</td><td> 139-140</td>
<td> 320</td><td>OMe Fr. about</td><td>white solid</td><td></td><td> 108.5-109.5</td>
<td> 321</td><td>OM o</td><td>yellow-glass</td><td> 412</td><td></td>
<td> 322</td><td>OHM· Λ »°<sup>N</sup> AT<sub>0</sub>XX ^</td><td>yellow sticky solid</td><td> 400</td><td></td>
<td> 323</td><td>OHM·</td><td>yellow sticky solid</td><td> 394</td><td></td>
<td> 324</td><td>OMe 'Λ'Χ rn<sup>N</sup> °</td><td>white solid</td><td> 345</td><td> 141-143</td>
<td> 325</td><td>OHM·</td><td>glass</td><td> 398</td><td></td>
<td> 326</td><td>OHM· ... | l <sub>H.</sub> OHM· o * Xo<sup>ABOUT</sup>'zV</td><td>clear gel</td><td></td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 327</td><td>OMe °<sup>Λρ</sup>* ' about</td><td>clear gel</td><td></td><td></td>
<td> 328</td><td>OMe O ^ Ph 0</td><td>dirty white solid</td><td></td><td></td>
<td> 329</td><td>OMe Are# 0 o7 i * —OH '</td><td>white solid</td><td></td><td></td>
<td> 330</td><td>OMe ifSr<sup>OH</sup>H o * i ° ° ^> - OAc</td><td>white solid</td><td></td><td></td>
<td> 331</td><td>OMe</td><td>white solid</td><td></td><td></td>
<td> 332</td><td>OMe Pti liV<sup>K.</sup>H. ψγγγ-<sup>1</sup>θ <sup>ABOUT</sup>-> - 0-Ph</td><td>white solid</td><td></td><td></td>
<td> 333</td><td>OMe ° ° '/ - OAc</td><td>white solid</td><td></td><td></td>
<td> 334</td><td>OMe 0 A.<sub>ABOUT</sub>^°<sup>H.</sup>HO</td><td>yellow solid</td><td></td><td></td>
<td> 335</td><td>OMe<sup>0</sup> Acr ^<sup>0</sup>** What</td><td>white solid</td><td></td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 336</td><td>* OMe Λ ^ ΟΗ OOCCMe, ^ N<sup>x</sup>Wr<sup>OOCCMe</sup>’ <sup>0</sup> ° Y ^ 'OOCCMe<sub>J. </sub>'OOCCMe,</td><td>and white solid</td><td></td><td></td>
<td> 337</td><td>MeO OH <sub>H.</sub> COOH</td><td>white solid</td><td>M + 1 423</td><td></td>
<td> 338</td><td>MeO OH in COOMe</td><td>brown oily solid</td><td>M + 1 437</td><td></td>
<td> 339</td><td>MeO OH m COO Ph About what-"*'</td><td>white waxy solid</td><td>M + 1 513</td><td></td>
<td> 340</td><td>MeO OH h COOMe N 0</td><td>sticky solid</td><td> 270</td><td></td>
<td> 341</td><td>OM · S = o χ ^<sup>0Η</sup> o ABOUT COOH<sup>0 k</sup>OH '</td><td>brown oil</td><td></td><td></td>
<td> 342</td><td>ohm. —E =<sub>about</sub>OO COOChLPti (\ βΛ ^ 0 Xch ^</td><td>clear oil</td><td></td><td></td>
<td> 343</td><td>ABOUT MeO OH <sub>H.</sub> VOMe > = < <sup>N_</sup>(, ° Γη<sup>ύ</sup>Χ + - N 0 /</td><td>pale yellow resin</td><td>M + 1 403</td><td></td>
<td> 344</td><td>0 MeO OH in X-OMe<sup>about</sup>'<sup>j</sup>C.<sup>ph</sup></td><td>pale yellow resin</td><td>M + 1 403</td><td></td>
<td> 345</td><td>0 MeO OH <sub>H.</sub> VoMe > = / N— (O ν, ΓΛ</td><td>amber resin</td><td>M + 1 417</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 346</td><td>0 MeO OH <sub>M.</sub> / —OMe Ph</td><td>pale yellow oil</td><td>M + 1 419</td><td></td>
<td> 347</td><td></td><td>pinkish resin</td><td>M + 1 427</td><td></td>
<td> 348</td><td></td><td>pinkish resin</td><td>M + 1 469</td><td></td>
<td> 349</td><td>ABOUT MeO OH <sub>H.</sub> ^ -OMe Ph</td><td>pale yellow resin</td><td>M + 1 503</td><td></td>
<td> 350</td><td>0 MeO OH <sub>H.</sub> VoMe. | . > = <N- <0 T <A — i ^ -O-? O-Si- Vn about Λ- 'i Ph</td><td>amber resin</td><td>M + 1 447</td><td></td>
<td> 351</td><td>) - 0 MeO OH <sub>H.</sub> >=0 >=/ \ <sup>0 </sup>ίΗ "<sup>Ύ</sup>·5-’</td><td>pale yellow resin</td><td>M + 1 445</td><td></td>
<td> 352</td><td>y-.</td><td>amber resin</td><td> 454</td><td></td>
<td> 353</td><td>V about MeO OH <sub>H.</sub> y = O > = <HZ 0 0 GV * {^</td><td>yellow resin</td><td> 516</td><td></td>
<td> 354</td><td>“V» Ζ ° o Ψ CH,</td><td>yellow resin</td><td>M + 1 499</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 355</td><td>5- Χ- ΟΛ Ph— ' <sup>λ</sup></td><td>yellow resin</td><td>M + 1 545</td><td></td>
<td> 356</td><td>V about MeO OH <sub>H.</sub> ) = O > = <N- (0 PU Ph—<sup>7 X</sup></td><td>pale yellow resin</td><td>M + 1 579</td><td></td>
<td> 357</td><td>V- about MeO OH o> ° xlx Ph—<sup>7 λ</sup></td><td>yellow resin</td><td>M + -1 589</td><td></td>
<td> 358</td><td>0 AND qv * u (S, S and S, R diastcreomers)</td><td>pale yellow resin;</td><td> 516</td><td></td>
<td> 359</td><td>> 4 about ' MeO OH <sub>H.</sub> \ = O > = <N- <0 <W \ -0- <p « n 0 \ —f (S, S and SR diastereomers)</td><td>pale yellow resin</td><td> 516</td><td></td>
<td> 360</td><td> 0^ <sup>UeO</sup>> 7 Hf<sup>0</sup> about CpoX ° V</td><td>yellow resin</td><td> 472</td><td></td>
<td> 361</td><td>OMe χχ ° A<sub>about</sub><sup>0</sup></td><td>yellow oil</td><td></td><td></td>
PL 205 059 B1
Table i
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° G)</td>
<td> 362</td><td>OMe A · - ™, 0</td><td>yellow oil</td><td>M + I489</td><td></td>
<td> 363</td><td>OMe A - o 'ΪΌ-</td><td>yellow oil</td><td>M + I486</td><td></td>
<td> 364</td><td>OUe O 0</td><td>yellow oil</td><td>M + 1 503</td><td></td>
<td> 365</td><td>? “* A OAJJjó about</td><td>yellow oil</td><td></td><td></td>
<td> 366</td><td>OMe A ™ —y * at 0</td><td>yellow oil</td><td></td><td></td>
<td> 367</td><td>χ »This one</td><td>yellow oil</td><td></td><td></td>
<td> 368</td><td>° UO Y) Χ, ΟΗ <sub>α</sub>ΧΛ Ν- ^ Ζχζ% Χ<sub>0</sub>ο</td><td>yellow oil</td><td>M + 1 435</td><td></td>
<td> 369</td><td>OMe</td><td>yellow oil</td><td></td><td></td>
<td> 370</td><td>OMe AM ,, ™ ο '</td><td>yellow oil</td><td>M + l387</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 371</td><td>OMe óQa— " 0</td><td>yellow oil</td><td>M + I 373</td><td></td>
<td> 372</td><td>OMe ΟΦα-ο 0</td><td>yellow oil</td><td></td><td></td>
<td> 373</td><td>OMe and OOa ^ a ' 0 0</td><td>yellow oil</td><td></td><td></td>
<td> 374</td><td>OHM· Y<sup>COOH</sup>° W.</td><td>yellow oil</td><td>M + I 423</td><td></td>
<td> 375</td><td> ° 0</td><td>white solid</td><td> 400</td><td></td>
<td> 376</td><td>OMe θ ΧΑφγ-</td><td>pale yellow solid</td><td> 473</td><td> 190-192</td>
<td> 377</td><td>0 S.<sup>H.</sup></td><td>white solid</td><td>M + 1 379</td><td> 234-235</td>
<td> 378</td><td>OMe Ar<sup>0H</sup> about 0</td><td>solid</td><td> 338</td><td></td>
<td> 379</td><td>OHM· A j ° YΆ-α ^ λ » 0 Χ, Ο-Α Η 0</td><td>pale yellow solid</td><td> 439</td><td> 118-121</td>
<td>38C</td><td>OMe δφγΑ<sup>0 L.</sup>° dO</td><td>white solid</td><td> 406</td><td> 107-105</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 381</td><td>OMe o, T</td><td>biate solid</td><td></td><td></td>
<td> 382</td><td>OMe «Ά ° 0</td><td>white solid</td><td></td><td></td>
<td> 383</td><td>OMe AND<sup>0</sup> ° :</td><td>white solid</td><td> 444</td><td></td>
<td> 384</td><td> 9“· <sub>n</sub> . AND- A® k (X <sup>0</sup> T.<sup>0</sup> S.</td><td>white solid</td><td></td><td> 172-174</td>
<td> 385</td><td>OMe «< ° s</td><td>an ivory-colored solid</td><td></td><td> 194-196</td>
<td> 386</td><td>OMe oU (<sup>N</sup> if -Ph<sup>0</sup> 0</td><td>clear oil</td><td> 512</td><td></td>
<td> 387</td><td>OMe 0 <^ A «AL ° s</td><td>dirty white foam</td><td> 512</td><td></td>
<td> 388</td><td>OMe oA ° δ</td><td>white solid</td><td></td><td> 212-214</td>
<td> 391</td><td>OMe oAA «AL ° 0</td><td>brown foam</td><td> 540</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 392</td><td>ΟΜβ o * AA<sup>0</sup> °</td><td>clear oil</td><td></td><td></td>
<td> 393</td><td>about o. o ° i- ^ o</td><td>yellow glass</td><td></td><td></td>
<td> 394</td><td>OM · O-.Pt! Α'-ίΧ<sup>0</sup> AND</td><td>pale yellow solid</td><td></td><td> 181-185</td>
<td> 395</td><td>OMe ° "^ - oh óAbiC<sup>0</sup> about</td><td>yellow solid</td><td> 562</td><td></td>
<td> 396</td><td>OMe Us / <xY.<sup>0</sup> 5</td><td>white foam</td><td>M + 1 595</td><td></td>
<td> 397</td><td>OMe O ^ (CH1) "Me * if <sub>Ph</sub><sup>0</sup> AND</td><td>yellow solid</td><td></td><td></td>
<td> 398</td><td>ΟΜβ Ο ^ ΙΟΗ, Ι ,, Μβ<sup>0</sup> s</td><td>white solid</td><td></td><td></td>
<td> 399</td><td>OMe <X = -i = X<sup>0</sup> 0</td><td>white foam</td><td>M + 1 530</td><td></td>
<td> 400</td><td>OHM· «T = x<sup>0</sup> δ</td><td>white solid</td><td></td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 401</td><td>OMe θχ<sub>/</sub>-Ο<sub>%</sub>_/ <sup>0</sup> Ϊ</td><td>white resinous solid</td><td> 530</td><td></td>
<td> 402</td><td>OMe About h</td><td>dirty white solid</td><td></td><td> 182-184</td>
<td> 403</td><td>OMe <in.</td><td>white solid</td><td></td><td> 194-195</td>
<td> 404</td><td>OMe * Λ · ουα „,</td><td>white solid</td><td></td><td> 126-127</td>
<td> 405</td><td>OMe iV "« ΤΟ ^ Χ, 0</td><td>pale yellow solid</td><td> 416</td><td></td>
<td> 406</td><td>OMe WTCęO '<sup>0</sup>" ABOUT</td><td>dirty white solid</td><td> 416</td><td></td>
<td> 407</td><td>OMe j Ao / x. • OH</td><td>dirty white solid</td><td> 431</td><td></td>
<td> 408</td><td>OMe</td><td>white solid</td><td>M + 1 446</td><td></td>
<td> 409</td><td>OMe Ao / r Ν.<sub>Λ</sub>.. OMe</td><td>white solid</td><td> 445 |</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 410</td><td>OHM· | Γ ^ Υ<sup>0Η</sup>Η ΎαΛ, Η</td><td>yellow solid</td><td></td><td> 204-205</td>
<td> 411</td><td>OHM. ZY JCOH 0</td><td>dirty white solid</td><td> 350</td><td></td>
<td> 412</td><td>OHM·</td><td>dirty white solid</td><td> 350</td><td></td>
<td> 413</td><td>OHM·</td><td>dirty white solid</td><td> 350</td><td></td>
<td> 414</td><td>OMe</td><td>dirty white solid</td><td> 350</td><td></td>
<td> 415</td><td>OMe</td><td>dirty white solid</td><td> 350</td><td></td>
<td> 416</td><td>ohm· ńr ΎΤΧΧΧ</td><td>dirty white solid</td><td> 350</td><td></td>
<td> 417</td><td>OMe ^ ί “τ><sub>0</sub>ΧΧ</td><td>dirty white solid</td><td> 350</td><td></td>
<td> 418</td><td><** · i ^ fig iV<sup>H.</sup>H? V oh oh</td><td>dirty white solid</td><td> 361</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 419</td><td>OMe A-oh <sub>about</sub>v</td><td>dirty white solid</td><td> 361</td><td></td>
<td> 420</td><td>OMe <sup>1</sup>Ατχ-Ρ<sup>1</sup>CN</td><td>dirty white solid</td><td> 361</td><td></td>
<td> 421</td><td>OMe ^ AA</td><td>dirty white solid</td><td> 361</td><td></td>
<td> 422</td><td>OMe</td><td>dirty white solid</td><td> 361</td><td></td>
<td> 423</td><td>OMe Α'τΧΤΧ,</td><td>pale yellow solid</td><td> 404</td><td></td>
<td> 424</td><td>OMe fSr<sup>0H</sup>H. Α'όΧ</td><td>dirty white solid</td><td> 404</td><td></td>
<td> 425</td><td>OMe ΑίΑΧΧ '</td><td>dirty white solid</td><td> 404</td><td></td>
<td> 426</td><td>OMe Αγ °<sup>Η</sup> A ° - ΑΆχχ</td><td>white solid</td><td></td><td> 125-127</td>
<td> 427</td><td>OMe A.0H Ο ^ Ο ^ χ χύλγα '·</td><td>white solid</td><td></td><td> 145-147</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Melting point (° C)</td>
<td> 428</td><td>j *<sup>1</sup>* ABOUT Aoh ^ oAAowe<sup>0</sup></td><td>dirty white solid</td><td> 366</td><td></td>
<td> 429</td><td>? “· ΓΊΓ Aoh <sub>θ</sub>Α * yS</td><td>dirty white solid</td><td> 366</td><td></td>
<td> 430</td><td>OHM·</td><td>dirty white solid</td><td> 366</td><td></td>
<td> 431</td><td>OHM· no v O</td><td>dirty white solid</td><td> 366</td><td></td>
<td> 432</td><td>OMe ^? τσ ° ιχ.</td><td>dirty white solid</td><td> 366</td><td></td>
<td> 433</td><td>OMe ^ OA OMe</td><td>dirty white solid</td><td> 366</td><td></td>
<td> 434</td><td>OMe</td><td>dirty white solid</td><td> 366</td><td></td>
<td> 435</td><td>OMe</td><td>dirty white solid</td><td> 366</td><td></td>
<td> 436</td><td>OMe | X ™ Af ° . “ΎΌ<sub>ο</sub>.α<sup>ο</sup></td><td>white solid</td><td></td><td> 109-110.5</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 437</td><td>f0M <sub>ABOUT</sub>-G.<sub>and</sub>AA</td><td>dirty white solid</td><td> 370, 372</td><td></td>
<td>43S</td><td>ίΫ- 0</td><td>dirty white solid</td><td> 370, 372</td><td></td>
<td> 439</td><td>OMe</td><td>dirty white solid</td><td> 370, 372</td><td></td>
<td> 440</td><td>OMe</td><td>dirty white solid</td><td> 370, 372</td><td></td>
<td> 441</td><td>OMe α</td><td>dirty white solid</td><td> 370, 372</td><td></td>
<td> 442</td><td>OMe d? Q<sub>about</sub>ABOUT<sub>and</sub></td><td>dirty white solid</td><td> 370, 372</td><td></td>
<td> 443</td><td>OMe</td><td>dirty white solid</td><td> 370, 372</td><td></td>
<td> 444</td><td>OMe</td><td>white solid</td><td></td><td> 133-134</td>
<td> 445</td><td>OMe Αχθ, n</td><td>yellow solid</td><td></td><td> 167-169</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting ('C)</td>
<td>44S</td><td>OMe</td><td>white solid</td><td> 420</td><td></td>
<td> 447</td><td>OMe</td><td>white solid</td><td> 418</td><td></td>
<td> 448</td><td>OMe ίγ'γχ - . , ° *., -</td><td>white solid</td><td> 418</td><td></td>
<td> 449</td><td>OMe h</td><td>dirty white solid</td><td> 431</td><td></td>
<td> 450</td><td>OMe about M. <sup>H.</sup></td><td>white solid</td><td></td><td> >260</td>
<td> 451</td><td>OMe</td><td>dirty white solid</td><td>M + 1 433</td><td>196 (dec.)</td>
<td> 452</td><td>OMe<sub>0</sub>ABOUT<sup>0</sup> CFj</td><td>dirty white solid</td><td> 432</td><td></td>
<td> 453</td><td>OMe f \ " if<sup>N</sup>V ^ <sup>σ</sup></td><td>yellow solid</td><td></td><td> 240-242</td>
<td> 454</td><td>OMe cXvyjX</td><td>dirty white solid</td><td></td><td> 240-242</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 455</td><td>OMe</td><td>white solid</td><td> 358</td><td></td>
<td> 456</td><td>OMe όΑγο about</td><td>white solid</td><td> 392</td><td></td>
<td> 457</td><td>OMe eeA. TAcf,</td><td>a dull white solid</td><td> 460</td><td></td>
<td> 458</td><td>OHM·</td><td>a dull white solid</td><td></td><td> 141-142</td>
<td> 459</td><td>OMe; FZZtaĄ</td><td>a dull white solid</td><td></td><td> 161-163</td>
<td> 460</td><td>OMe</td><td>white solid</td><td></td><td> 149-153</td>
<td> 461</td><td>OMe</td><td>white solid</td><td></td><td> 169-171</td>
<td> 462</td><td>OMe</td><td>white solid</td><td></td><td> 141-143</td>
<td> 463</td><td>OMe "in</td><td>white solid</td><td></td><td> 140-141.5</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (* C)</td>
<td> 464</td><td>OMe %AND.</td><td>white solid</td><td></td><td>179-18t</td>
<td> 46$</td><td></td><td>white made it solid</td><td></td><td> 160-162</td>
<td> 466</td><td></td><td>white solid</td><td></td><td> 198-200</td>
<td> 467</td><td>OMe ιΗν<sup>0</sup>"C ?, AND* ο AiAgAiAjj</td><td>pale yellow body Solid</td><td></td><td> 198-201</td>
<td> 468</td><td>ΟΜ » χ ° «<sub>Η</sub>^> + yNy-A,. <sub>N</sub>^ N about UA<sub>about</sub>AAoph j</td><td>white solid</td><td> 430</td><td></td>
<td> 469</td><td>OMe j 5 Ij LAc,</td><td>white solid</td><td></td><td> 149-151</td>
<td> 470</td><td>OMe</td><td>white solid</td><td></td><td> 173-175</td>
<td> 471</td><td>OMe about UaA ^</td><td>white solid</td><td></td><td> 193-195</td>
<td> 472</td><td>OMe ^ ϊ \ χχΑ</td><td>white solid</td><td>M + 1 406</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 473</td><td>OHM. U <> AWA</td><td>yellow solid</td><td> 812</td><td></td>
<td> 474</td><td></td><td>colorless crystals</td><td></td><td> 107-110</td>
<td> 475</td><td>in<sup>0</sup> !</td><td>yellow solid</td><td></td><td> 168-172</td>
<td> 476</td><td>^ ΊΑΧΧ,</td><td>brown solid</td><td></td><td> 118-121</td>
<td> 477</td><td>SMe</td><td>yellow resin</td><td> 322</td><td></td>
<td> 478</td><td>SMe °<sub>x</sub> / on<sup>H.</sup> νοΑ o</td><td>light yellow solid</td><td></td><td> 184-187</td>
<td> 479</td><td>^ ΌςΧΧ,</td><td>light yellow solid</td><td></td><td> 129-132</td>
<td> 480</td><td>α</td><td>resinous brown solid</td><td> 310.312</td><td></td>
<td> 481</td><td>-ο? ξ £ <sup>υ</sup> 0</td><td>glass</td><td> 514</td><td></td>
PL 205 059 B1
Table i
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting ('C)</td>
<td> 482</td><td>/ A * x ^ V °<sup>Me</sup> 0</td><td>white solid</td><td> 336, 338</td><td></td>
<td> 483</td><td>ΧΧ ^ χθ Ο ί</td><td>solid</td><td></td><td> 124-126</td>
<td> 484</td><td>, -ΟφΆ; Ο <sup>α</sup></td><td>white flesh-like</td><td> 346, 346,350</td><td></td>
<td> 485</td><td>χ ^ ΟΜ βΑ '<sub>Μ</sub>Χ | 'Χ · Χ -' ^ 0</td><td>yellow solid</td><td></td><td> 140-142</td>
<td> 486</td><td>χφ / χ</td><td>dirty white solid</td><td></td><td> 111-113</td>
<td> 487</td><td></td><td>white solid</td><td></td><td> 106-107</td>
<td> 488</td><td>χ ^ ΟΗ χ ^ γ ^. AA-Z 0 <sup>1</sup></td><td>body btafe constantly</td><td> 388, 390</td><td></td>
<td> 489</td><td>Br <sup>Ν</sup> V * Ο *</td><td>yellow resin</td><td> 390, 392</td><td></td>
<td> 490</td><td>χ ^ χ ° π ΧΤ 0 '</td><td>light yellow oil</td><td> 412, 414</td><td></td>
<td> 491</td><td>ί ^ ·<sup>0Η</sup>aX? Y ^ Y ^ f * Ο Ph</td><td>yellow resin</td><td> 396,398</td><td></td>
<td> 492</td><td>oC ^ cf, Ο Μ</td><td>biate solid</td><td> 452, 454</td><td> _</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 493</td><td>γτ<sup>οη</sup>η 4 0</td><td>white solid</td><td> 452,454</td><td></td>
<td> 494</td><td><sup>j</sup>A '"o'<sup>about</sup>t5</td><td>white solid</td><td> 452, 454</td><td></td>
<td> 495</td><td></td><td>orange resin</td><td> 452, 454</td><td></td>
<td> 496</td><td></td><td>white solid</td><td> 452, 454</td><td></td>
<td> 497</td><td>X<sup>and</sup>ABOUT<sub>0</sub>and? cp,</td><td>orange / white solid</td><td> 452, 454</td><td></td>
<td> 498</td><td></td><td>white solid</td><td> 452, 454</td><td></td>
<td> 499 '</td><td><V<sup>0H</sup> “<sup>Λ</sup>Ατχσ ·</td><td>white body constantly</td><td> 452. 454</td><td></td>
<td> 500</td><td>yy<sup>0H</sup></td><td>white solid</td><td> 409, 411</td><td></td>
<td> 501</td><td>TOH ABOUT 1 VO</td><td>white foam</td><td>M-2 631</td><td></td>
<td> 502</td><td>rv<sup>OH</sup> behind-</td><td>dirty white solid</td><td></td><td>232-235 (dec.)</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (C)</td>
<td> 503</td><td>about</td><td>white solid</td><td></td><td>213-215 (dec.)</td>
<td> 504</td><td> 0</td><td>gray solid</td><td></td><td> 70-78</td>
<td> 505</td><td>Ή</td><td>dark tar</td><td></td><td></td>
<td> 506</td><td> 0</td><td>dark tar</td><td></td><td></td>
<td> 507</td><td>oa ° 0</td><td>dark tar</td><td></td><td></td>
<td> 508</td><td>n ^ V<sup>oh</sup>ii T η Γ T About and</td><td>dark tar</td><td> 272</td><td></td>
<td> 509</td><td>• Pr ™ rr<sup>and</sup> 0 '</td><td>dark tar</td><td> 276, 278</td><td></td>
<td> 510</td><td>nV<sup>0H</sup>oooo OI</td><td>dark tar</td><td> 310</td><td></td>
<td> 511</td><td><sup>n</sup>V<sup>0H</sup>hi ^ r<sup>00</sup><sup>5</sup>ABOUT '</td><td>dark tar</td><td> 326</td><td></td>
<td> 512</td><td>«V« γυ<sup>0</sup>* ULflJU about *</td><td>dark tar</td><td></td><td></td>
<td> 513</td><td><sup>0</sup> / νΉ-% Η “<οΛ»</td><td>brown glass</td><td> 485</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 514</td><td>ΟγΜ: 0</td><td>white solid</td><td></td><td> 180-181</td>
<td> 515</td><td>0> O about</td><td>Secto brown solid</td><td></td><td> 190-192</td>
<td> 516</td><td>. N..OH CêuQ. «. 0 OMe</td><td>dirty white crystals</td><td></td><td> 193-194</td>
<td> 517</td><td>οςυσ: about</td><td>white crystals</td><td></td><td> 229-230</td>
<td> 518</td><td>N ^ OH</td><td>white solid</td><td></td><td> 219-221</td>
<td> 519</td><td>N OH o Ph</td><td>brownish-white solid</td><td></td><td> 190-192</td>
<td> 520</td><td>N OH <sub>Q</sub>.Ph ABOUT</td><td>light yellow needles</td><td></td><td> 234-235</td>
<td> 521</td><td>N OH AAy ^ j ^ j-<sup>0</sup> * ph</td><td>light brown crystals</td><td></td><td> 200-201</td>
<td> 522</td><td>N OH OT ^ X<sub>Q</sub>-Ph</td><td>white crystals</td><td></td><td> 223-224</td>
<td> 524</td><td></td><td>colorless needles</td><td></td><td> 307-308</td>
<td>S25</td><td>\ .NOH Q 1 AA in θ</td><td>colorless crystals and</td><td></td><td> 247-250</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 526</td><td>N OK V</td><td>gray solid</td><td></td><td> 320-327</td>
<td> 527</td><td>λ<sub>υ</sub><sup>οη</sup> ° i</td><td>gray solid</td><td></td><td> 120-130</td>
<td> 528</td><td></td><td>colorless needles</td><td></td><td> 286-288</td>
<td> 529</td><td><sup>at</sup> 0</td><td>colorless solid j</td><td> 512</td><td></td>
<td> 530</td><td></td><td>colorless crystals</td><td></td><td> 329-331</td>
<td> 531</td><td>MOTHER <sup>at</sup> 0</td><td>colorless solid</td><td></td><td> 103-108</td>
<td> 532</td><td>Ά about</td><td>white solid</td><td></td><td>233 (dec.)</td>
<td> 533</td><td>O? <£</td><td>light yellow pollen</td><td></td><td>248-250 (dec.)</td>
<td> 534</td><td>Ά <sup>υ</sup> 0</td><td>yellow solid</td><td>M-1 484</td><td></td>
<td> 535</td><td><sup>N</sup> ° « • ΎΟΑΧ,</td><td>yellow solid</td><td></td><td>239-243 (dec.)</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 536</td><td>W, N OH o I ( χγτγ</td><td>dirty white solid</td><td></td><td> 80-83</td>
<td> 537</td><td>about / MeO N OH 9 I. ° 0</td><td>brown solid</td><td></td><td> 84-86</td>
<td> 538</td><td>α ^, Η ΟΗ 9 I</td><td>beige solid</td><td></td><td> 108-110</td>
<td> 539</td><td></td><td>white solid</td><td></td><td> 263-265</td>
<td> 540</td><td>-'X? X</td><td>white solid</td><td></td><td>195 (dec.)</td>
<td> 541</td><td>Χ.Ν OH \</td><td>white crystalline solid</td><td></td><td> >300</td>
<td> 542</td><td></td><td>clear solid</td><td></td><td>220 (dec.)</td>
<td> 543</td><td>HO ___ Ν'.ΟΗ \ _ at JH</td><td>brown solid</td><td></td><td> 283-285</td>
<td> 544</td><td> 0</td><td>clear glass</td><td>M + 1 503 M-1 501</td><td></td>
<td> 545</td><td>Ύΐχϊ about Z</td><td>colorless solid</td><td>and</td><td> 265-268</td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 546</td><td>Μβ3<sub>γ</sub>Ν OH γ-Χ 0</td><td>yellow crystals</td><td></td><td> 208-213</td>
<td> 547</td><td>“ΧΧ ^ ώ ^ Oh **</td><td>yellow-brown solid</td><td>M + 1 533</td><td></td>
<td>54S</td><td>MeS ^ N- ^ OH ΆΆ p.</td><td>yellow solid</td><td></td><td> 261-265</td>
<td> 549</td><td><XXr about /</td><td>colorless needles</td><td></td><td> 121-125</td>
<td> 550</td><td>ck<sup>B</sup>-kce</td><td>clear glass</td><td>M + 1 491</td><td></td>
<td> 551</td><td></td><td>yellow solid</td><td> 380</td><td></td>
<td> 552</td><td>N 2 -OH.</td><td>yellow solid</td><td></td><td> 96-102</td>
<td> 553</td><td>0 1 7- ( Ά. ο</td><td>glassy solid</td><td>M + 1 492</td><td></td>
<td> 554</td><td>cc <£</td><td>brown crystals</td><td></td><td> 170-174</td>
<td> 555</td><td>ζ = γ “ '^ Χΰχ,</td><td>| brown resin</td><td> 379</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular <M)</td><td>Point melting ("ABOUT</td>
<td> 556</td><td> 0</td><td>biate solid</td><td></td><td>195 (dec.)</td>
<td> 557</td><td></td><td>white body stood</td><td></td><td> 205-208</td>
<td> 558</td><td>, X 0, V - \ _ Jjm Ao i and</td><td>biate solid</td><td></td><td> 199-205</td>
<td> 558.</td><td></td><td>white solid</td><td></td><td> 215-217</td>
<td> 550</td><td></td><td>light brown solid</td><td></td><td> 185-188</td>
<td> $61</td><td>/ ϊγ * 0 and W.</td><td>brown glassy solid</td><td></td><td> 115-117</td>
<td> 562</td><td>cęęA ^ j<sup>at</sup> about</td><td>bfiidy and white solid</td><td></td><td> 163-185</td>
<td> 563</td><td>time ^</td><td>yellow solid</td><td></td><td> >300</td>
<td> 564</td><td>o = ^ about Ρ 'ν ^ ™ # ^ ι · ι— \ s = N N- / YO hw</td><td>colorless crystals</td><td> 320</td><td> 158-161</td>
<td> 555</td><td>o = ^ ΗΧλΜ \ -s<sub>HH</sub>^ Z) -O \ MW</td><td>colorless oil</td><td>37S</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 566</td><td>Ph ° = <<sub>about</sub>CÓp,<sup>N</sup> kO<sup>oh</sup></td><td>colorless resin</td><td> 340</td><td></td>
<td> 567</td><td>Ph ° = <<sub>about</sub>(Λ-Α Χ '' i</td><td>colorless solid</td><td> 444</td><td> 174-177</td>
<td> 568</td><td>A = A 0</td><td>dirty white solid</td><td></td><td></td>
<td> 569</td><td>OMe Aa ABOUT</td><td>thick grease</td><td></td><td></td>
<td> 570</td><td>cHhOh <P-<sup>CFi</sup></td><td>clear yellow grease</td><td> 416</td><td></td>
<td> 571</td><td>o = h \ # X = nn — ę y</td><td>colorless oil</td><td> 360</td><td></td>
<td> 572</td><td> 0</td><td>colorless needles</td><td>M + 1 569</td><td> 163-166</td>
<td> 573</td><td>° = / MeO 0</td><td>white solid</td><td></td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 574</td><td>0 = / MeO O '<sup>J =</sup>NH \ /</td><td>white solid</td><td></td><td></td>
<td> 575</td><td>0 = / MaO O Ą ~ ^> = o</td><td>white solid</td><td> 362</td><td></td>
<td> 576</td><td>o = ^ MeO 0 kkf CF,</td><td>white solid</td><td></td><td></td>
<td> 577</td><td>0 = / MaO 0 CK - <- f CF,</td><td>white solid</td><td></td><td></td>
<td> 578</td><td>Ά MeO 0</td><td>white foam</td><td> 360</td><td></td>
<td> 579</td><td>0 = æ MeO O</td><td>pale yellow resin</td><td> 344</td><td></td>
<td> 580</td><td>0 = ^ MeO 0</td><td>clear gel</td><td></td><td></td>
<td> 581</td><td>0 = 2 MaO 0 0 Ph<sup>H.</sup> COOMe</td><td>pale yellow resin</td><td>M + 1 445</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 582</td><td>0 = / 'OM · i MeO 0 O Ph i N- (j<sup>M.</sup> COOMe</td><td>pale yellow resin</td><td>M + 1 477</td><td></td>
<td> 583</td><td>O = ( MeO 0 O r- Ph (W-Z CAKE N- <<sup>H.</sup> COOMe</td><td>pale yellow resin</td><td>M + 1 445</td><td></td>
<td> 584</td><td>O = / OM · MeO 0 O / - Ph ZX<sup>K.</sup> COOMe</td><td colspan="2">pale yellow resin M + 1 477</td><td></td>
<td> 585</td><td>0 = / f * MeO 0 O O- ' tRU<sup>H.</sup> COOMe</td><td>pale yellow oil</td><td>M + 1 461</td><td></td>
<td> 586</td><td>ob MeO 0 0) -<sup>H.</sup> COOMe</td><td>pinkish resin</td><td>M + 1 469</td><td></td>
<td> 587</td><td>okay <sub>about</sub> R 1 , -cO-Ph L = NN— (<sup>M.</sup> COOMe</td><td>pale yellow resin</td><td>M + 1 545</td><td></td>
<td> 588</td><td>° R MeO 0 O / rO ^ -Ph b = NN— (<sup>H.</sup> k ° ° λ</td><td>pale yellow resin</td><td>M + 1 487</td><td></td>
<td> 589</td><td>MeO 0 O) - K / r-oM-Ph \ = N N- (</td><td>yellow resin</td><td>M + 1 587</td><td></td>
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 590</td><td>O = / MeO 0 0 / —Ph WA</td><td>yellow resin</td><td> 558</td><td></td>
<td> 591</td><td><sup>0=</sup>A °<sup>MeO</sup>v_? 0 Η'Ο'θγο ° P</td><td>clear oil</td><td></td><td></td>
<td> 592</td><td><sup>0=</sup>A p *<sup>1</sup>) MeO O i in.</td><td>dirty white solid</td><td></td><td></td>
<td> 593</td><td>° = / \ y MeO 0 Y—</td><td>white solid</td><td> 470</td><td></td>
<td> 594</td><td>MeO r ~~</td><td>white solid</td><td> 470</td><td></td>
<td> 595</td><td>0 = ^ MeO O about</td><td>white solid</td><td>M-1 377</td><td>163-164 C</td>
<td> 596</td><td>o = / MeO 0 O IN 0</td><td>dirty white solid</td><td></td><td></td>
<td> 598</td><td>o = r MeO 0 O, 0</td><td>white solid</td><td>M + 1 571</td><td> 171-172</td>
100
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C></td>
<td> 599</td><td>MeO 0 / ooiz— \ about</td><td>white solid</td><td>M + 1 585</td><td> 162-163</td>
<td> 600</td><td>o = f MeO 0 °<sub>Λ</sub> / IN? 0</td><td>yellow sticky solid</td><td></td><td></td>
<td> 601</td><td>about/ MeO 0 0. / about</td><td>white solid</td><td></td><td> 195-106</td>
<td> 602</td><td>0 = ^ MeO 0 0. / 0</td><td>dirty white solid</td><td>M + 1 584</td><td> 160-161</td>
<td> 603</td><td> 0=/<sup>-</sup>^<sup>-</sup><sub>n</sub>MeO O 0, / y - {_ o 9 i<sup>Łn</sup> «'<VC 0</td><td>yellow solid</td><td>M + 1 597</td><td></td>
<td> 604</td><td>X o about</td><td>white solid</td><td></td><td> 176-177</td>
<td> 605</td><td>-What MeO 0 O, / 0</td><td>sticky light yellow solid</td><td></td><td></td>
PL 205 059 B1
101
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 606</td><td>o = <A MeO O O. / xxA<sup>0</sup> and</td><td>sticky yellow solid</td><td>M + 1 599</td><td></td>
<td> 607</td><td>o = k MeO O O. / 0</td><td>sticky light yellow solid</td><td>M + 1 597</td><td></td>
<td> 608</td><td>O = ^ \ - | MeO O O. Z ^ A 0</td><td>sticky yellow solid</td><td>M + 1 613</td><td></td>
<td> 609</td><td>AND MeO O ° / o «A ABOUT</td><td>white solid</td><td>M + 1 613</td><td></td>
<td> 610</td><td>□ = H ~ MeO O ° * / ° «A ABOUT</td><td>dirty white solid</td><td> 612</td><td> 151-152</td>
<td> 611</td><td>oP MeO O O. / yy OO 1? - \ about</td><td>white sticky solid</td><td></td><td></td>
<td> 612</td><td>oP MeO O ° a / A ~ ę t ° ^ ~ jl ^ c) χ about</td><td>white sticky solid</td><td></td><td></td>
102
PL 205 059 B1
Table l
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular <M></td><td>Point melting (° C)</td>
<td> 613</td><td>Μβ0<sup>Ο =</sup>Χ ^ ~ * ^ ~ O / i ΒΧΧγΧ, ρ * about</td><td>white sticky solid body / wax</td><td>M + 1 627</td><td></td>
<td>et *</td><td>A ^ JK about</td><td>sticky white solid</td><td>M + 1 641</td><td></td>
<td>ets</td><td>MeO OO / At about</td><td>biate solid</td><td>M + 1 639</td><td></td>
<td> 616</td><td>0 = æ ~ ^ AX_ Hh ° 6 ° H<sup>Vn</sup> EI <oX<sub>ph</sub>about</td><td>white solid</td><td>M + 1 655</td><td></td>
<td> 617</td><td><sub>O =</sub>f-Th_ MaO O '/ ABOUT</td><td>clear oil</td><td>M + 1 855</td><td></td>
<td> 618</td><td>about</td><td>clear gosh</td><td>M + 1 683</td><td></td>
<td> 819</td><td><sub>ο =</sub>^ Α_ · / '\ X. / about -</td><td>orange oil</td><td>M + 1 681</td><td></td>
PL 205 059 B1
103
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 620</td><td>o A 'α MeO 0 0 / ABOUT</td><td>dark orange solid</td><td>M + 1 605</td><td></td>
<td> 621</td><td>0 ^ 0 MeO 0 O / / ooiz— ( «<° x, 0</td><td>yellow oil.</td><td>M + 1 633</td><td></td>
<td> 622</td><td>0 = Oa MeO O 0 / ABOUT</td><td>white solid</td><td>M + 1 619</td><td></td>
<td> 623</td><td>α α MeO OO / ABOUT</td><td>brown oil</td><td>M + 1 671</td><td></td>
<td> 624</td><td>oA MeO 0 O. / 11 oH With Ph ABOUT</td><td>orange solid</td><td>M + 1 651</td><td></td>
<td> 625</td><td>O = <f \ —Br MeO 0 O / Y<sup>V</sup>Ph> 0</td><td>white solid</td><td>M + 1 665</td><td></td>
<td> 626</td><td>- \ ...... X ~<sup>Bf</sup>MeO O 0 / about</td><td>white / orange solid</td><td>M + 1 691</td><td></td>
104
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 628</td><td>0 MeO O 0. / In ooi 0</td><td>sticky yellow solid</td><td>M + 1 633</td><td></td>
<td> 629</td><td>MeO 0 0 / about</td><td>yellow solid</td><td>M + 1 633</td><td></td>
<td> 630</td><td>about 0 = / MeO O O. / WO 0 1 y— ( 0- «> Α ° <sup>xn</sup>ABOUT</td><td>sticky yellow solid</td><td>M + 1 633</td><td></td>
<td> 631</td><td> 0</td><td>clear oil</td><td>M + 1 661</td><td></td>
<td> 632</td><td>MeO O 0 / oo | > -ς Χγί, ρ * 0</td><td>clear oil</td><td>M + 1 647</td><td></td>
<td> 633</td><td>.-d. 0</td><td>yellow oil</td><td>M + 1 661</td><td></td>
PL 205 059 B1
105
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 634</td><td>OMe fi, MeO 0 o / ίΚξί 0</td><td>white sticky body constantly</td><td>M + 1 649</td><td></td>
<td>63S</td><td>vinegar, about</td><td>clear oil</td><td>M + 1 751</td><td></td>
<td> 636</td><td>-fi · -<sub>H.</sub> 0</td><td>sticky white solid</td><td>M + 1 637</td><td></td>
<td> 637</td><td>.fi MeO O 0 / 0</td><td>sticky white solid</td><td>M + 1 637</td><td></td>
<td> 638</td><td> 0</td><td>clear oil</td><td>M + 1 655</td><td></td>
<td> 639</td><td>MeO 0 ° / yi θ ° i A ~ \ T ^ Ph 0</td><td>white solid</td><td>M + 1 655</td><td></td>
106
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> $40</td><td>oU MeO 0 0 / ABOUT</td><td>sticky white solid</td><td>M + 1 687</td><td></td>
<td> 641</td><td>$ ° = (CF. MeO OO / IN* about</td><td>sticky yellow solid</td><td>M + 1 705</td><td></td>
<td> 642</td><td> :$' <sub>about</sub>MeO OO / CH> oV <sup>x</sup><sup>N</sup><sup>0</sup> and</td><td>sticky white solid</td><td>M + 1 709</td><td></td>
<td> 643</td><td>α! 0 o = <α MeO OO / tl> —ph about "</td><td>sticky yellow solid</td><td>M + 1 687</td><td></td>
<td> 644</td><td>MeO 0 O / ABOUT</td><td>clear oil</td><td>M + 1 687</td><td></td>
<td> 645</td><td>ifu ^<sup>0 Q</sup>χζ'ό <x ° o. o ° 5_ / " (0 °<sup>5</sup> X . and</td><td>sticky white solid</td><td>M + 1 686</td><td></td>
PL 205 059 B1
107
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 646</td><td>° -ó 0 = / ^ α MeO 0 O. / ooi Η 0</td><td>yellow oil</td><td>M + 1 720</td><td></td>
<td> 647</td><td>X * ° V - OO Fjs 2</td><td>sticky yellow solid</td><td>M + 1 697</td><td></td>
<td> 648</td><td>o = < <sub>n</sub><sup>M.</sup>yc ° ° λ, H. about</td><td>yellow foamy solid</td><td>M + 1 633</td><td></td>
<td> 649</td><td>σ oX MeO 0 0. / 0</td><td>sticky purple solid</td><td>M + 1 667</td><td></td>
<td> 650</td><td>Ph<sub>about</sub>MeO 0 O / ΊΓ Ph 0</td><td>white solid</td><td>M + 1 647</td><td></td>
<td> 651</td><td>Ph -Γ <sub>about</sub>MeO O 0 / ff k<sub>0</sub>\.,about '<sup>N</sup> '<sup>ν</sup>'<sup>Ο</sup>γΧ_<sub>ρη</sub> 0</td><td>sticky white solid</td><td>M + 1 645</td><td></td>
<td> 652</td><td>oX MeO OO / WEAK 0</td><td>orange oil</td><td>M + 1 661</td><td></td>
108
PL 205 059 B1
Table ϊ
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td>6S3</td><td>/ —OM «vol O = < MeO 0 O / χιΑ ABOUT</td><td>dirty white solid</td><td> 586</td><td></td>
<td> 654</td><td>z-OPti ° = \ MeO O O. / (Η λΛ ° <sup>x</sup><sup>N</sup>ABOUT</td><td>orange solid</td><td>M + 1 649</td><td></td>
<td> 655</td><td>z — SPh O = < MeO 0 ° / about</td><td>brown oil</td><td>M + 1 665</td><td></td>
<td> 656</td><td>/ —PSł by <° MeO OO / xt = A ABOUT</td><td>yellow solid</td><td>M + 1 663</td><td></td>
<td> 657 .</td><td>CF, '<sub>about</sub>^ * 0Me MeO 0 O / ABOUT</td><td>yellow solid</td><td>M + 1 731</td><td></td>
<td> 658</td><td>OMft op MeO O 0 / ABOUT</td><td>white solid</td><td></td><td>126-128 C</td>
<td> 659</td><td>V = o / -0 O = < MeO 0 θ. / ""AND ABOUT</td><td>brown oil</td><td>M + 1 615</td><td></td>
PL 205 059 B1
109
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 660</td><td>y = o 0 MeO 0 0 / 0</td><td>brown oil</td><td>M + 1 629</td><td></td>
<td> 661</td><td>iy ° oZ ° MeO 0 0 t W ° °. I H. ff) k<sub>0</sub>A- ° '<sup>N</sup>ABOUT</td><td>c brown solid</td><td>M + 1 643</td><td></td>
<td> 662</td><td>Ph _ X " MeO 0 0 / about</td><td>yellow oil</td><td>M + 1 677</td><td></td>
<td> 663</td><td>Ph \ = O 4 ° o MeO 0 0 i OH-iA ABOUT</td><td>yellow oil</td><td>M + 1 691</td><td></td>
<td> 665</td><td>cooet oA MeO 0 °<sub>AND</sub> / WP *? » ! <m ΛοΧ · ° <sup>x</sup> 0</td><td>white body constantly</td><td>M + 1 643</td><td></td>
<td> 667</td><td><sub>O =</sub>X \ - / \ COOMe MeO OO / 0</td><td>brown oil</td><td>M + 1 685</td><td></td>
<td> 668</td><td>α- ^ Λ “<sup>α</sup>MeO 0 0 / 0</td><td>sticky white solid</td><td>M + 1 688</td><td></td>
110
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 669</td><td>α ^ A 0</td><td>white sticky solid</td><td>M + 1 655</td><td></td>
<td> 670</td><td>α α AND AND 0</td><td>yellow sticky solid</td><td></td><td></td>
<td> 671</td><td>α 0 o = <α ΜβΟ 0 Ο / AND 0</td><td>white crystals</td><td>M + 1 688</td><td></td>
<td> 672</td><td>MeO 0 0 / »Α 0</td><td>sticky white solid</td><td>M + 1 654</td><td></td>
<td> 673</td><td>Ο = Ρ ΜβΟ 0 θ / 0</td><td>white foamy solid</td><td></td><td></td>
<td> 674</td><td>ο-Ρ ΜβΟ 0 ° / Α 0 Ο, Α <~ Α> οΑ ° <sup>χ</sup><sup>Ν</sup> 0</td><td>yellow sticky solid / oil</td><td></td><td></td>
PL 205 059 B1
111
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 675</td><td>MeO OO / ABOUT</td><td>brown oil</td><td>M + 1 639</td><td></td>
<td> 676</td><td>X MeO O 0, 0 O 1> - ( about</td><td>sticky white solid</td><td>M + 1 641</td><td></td>
<td> 677</td><td>α MeO ^ O ^ A ^ o, «X 0</td><td>sticky yellow solid</td><td>M + 1 768</td><td></td>
<td> 676</td><td>OMe ° = < <sub>n</sub>MeO 0 O. / ABOUT</td><td>yellow oil</td><td>M + 1 573</td><td></td>
<td> 679</td><td>oet MeO 0 O. / Π Ph ABOUT</td><td>transparent glass</td><td></td><td></td>
<td> 660</td><td>o— < ° = <'- MeO O °, / About and</td><td>yellow sticky solid</td><td>M + 1 601</td><td></td>
<td> 681</td><td>0— \ ° = <" MeO 0 °, / 0</td><td>clear oil</td><td>M + 1 599</td><td></td>
112
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 683</td><td>o-κ / o = <v_ / MeO 0 O. / about</td><td>white solid</td><td>M + 1 615</td><td></td>
<td> 684</td><td>o = <° A_ / MeO 0 O / 0 O i<sup>X = N</sup>about</td><td>orange solid</td><td>M + 1 613</td><td></td>
<td> 685</td><td>MeO<sup>O =</sup>k °<sub>AND</sub> / ABOUT</td><td>brown solid</td><td>M + 1 611</td><td></td>
<td> 686</td><td>o = <' MeO 0 O / IN about</td><td>sticky transparent solid</td><td>M + 1 615</td><td></td>
<td> 687</td><td>O- (> MeO 0 O / «-« X about</td><td>yellow oil</td><td>M + 1 629</td><td></td>
<td> 688</td><td>o-4 \ -4 o = < MeO 0 ° / ϊκαΧ ABOUT</td><td>yellow oil</td><td>M + 1 643</td><td></td>
<td> 689</td><td>ę & o, x 7 0 k, ° V r °<sub>v</sub>° <sup>5</sup> X</td><td>yellow oil</td><td>M + 1 671</td><td></td>
PL 205 059 B1
113
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Outlook</td><td>Ion Molecular <M)</td><td>Point melting <° C)</td>
<td> 690</td><td>MeO 0 0, / /> qi R \ «'<ο ^ Χ2ρη ABOUT</td><td>white sticky solid body</td><td>M + 1 697</td><td></td>
<td> 591</td><td>0— \ o = <α MeO OO / about</td><td>brown oyster</td><td>M + 1 621</td><td></td>
<td> 692</td><td>Λ- / Z .. a, R »<vC about</td><td>yellow oil</td><td>M + 1SS7</td><td></td>
<td> 693</td><td>0— \ / —Cl o = <'-' MeO 0 O / '. ABOUT</td><td>orange solid</td><td>M + 1 651</td><td></td>
<td> 694</td><td>What, ABOUT-/ o = ( MeO OO / IN about</td><td>brown oil</td><td>M + 1 689</td><td></td>
<td> 695</td><td>Ph about-<sup>7</sup>0 = < MeO O 0 / ABOUT</td><td>white sticky solid</td><td>M + 1 649</td><td></td>
<td> 696</td><td>op O = < MeO OC / 0</td><td>yellow solid</td><td>M + 1 684</td><td></td>
114
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 697</td><td>OPh 0 = ^ MeO 0 O * / 0</td><td>yellow oil</td><td>M + 1 635</td><td></td>
<td> 698</td><td><sub>ο =!</sub><sup>ο</sup>Ό ~ MeO OO / ABOUT</td><td>brown oil</td><td>M + 1 649</td><td></td>
<td> 699</td><td>s- \ o = <X- MeO O ° * / ABOUT</td><td>clear oil</td><td>M + 1 617</td><td></td>
<td> 700</td><td>\ N— O = < MeO O θ / ABOUT</td><td>white waxy solid</td><td></td><td></td>
<td> 701</td><td>O = æ about</td><td>white foam</td><td> 521</td><td></td>
<td> 702</td><td>0 = 2 \ _ MeO OO / - ABOUT</td><td>clear oil</td><td>M-1 569</td><td></td>
<td> 703</td><td>OMe oC MeO O <sup>ABOUT</sup>A / about</td><td>white powder</td><td>and 613</td><td> 144-145</td>
<td> 704</td><td>OMe And o y- MeO O ° 7 ~ {IN 8 <Ά " about</td><td>colorless resin</td><td> 542</td><td></td>
PL 205 059 B1
115
Table 1
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 705</td><td>ΟΜβ oA<sup>-</sup>' MeO 0 ° / —OMe Af ABOUT</td><td>thick grease</td><td></td><td></td>
<td> 706</td><td>OMe AND MeO O \ kT / CJz I</td><td>pale yellow solid</td><td></td><td> 158-160</td>
<td> 707</td><td>MeO O ff ~ \ y- <o Π I<sup>N</sup> Η Υ<sup>1</sup> NCU8</td><td>white foam</td><td>M + 1 488</td><td></td>
<td> 708</td><td>OMe AND MeO O Wjł (J-cf,<sup>N</sup> H \ = - / fjOMe</td><td>white solid</td><td>M + 1 532</td><td></td>
<td> 709</td><td>o = <_A MeO O β— \ H \ sasZ.</td><td>dirty white solid</td><td></td><td> 165-166</td>
<td> 710</td><td>O = <f MeO O y \ * _ /<sup>s_</sup>\=/<sup>_CF</sup>* \ = N 'J {“vZ /</td><td>yellow glass</td><td> 462</td><td></td>
<td> 711</td><td>oA MeO oe ~ \ ΑΛ- <<sup>Ο</sup>AND<sub>n</sub> N-TVs In \ $ SS & f</td><td>pale yellow solid</td><td></td><td> 134-136</td>
<td> 712</td><td>OMe AND X »(A A.>, -</td><td>yellow resin</td><td> 506</td><td></td>
116
PL 205 059 B1
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 713</td><td>OMe MeO 0 <sub>?</sub>CF,</td><td>white solid</td><td></td><td> 164-167</td>
<td> 714</td><td>OMe CF, A 0 MeO 0 0 / =<sup>7</sup></td><td>white solid</td><td></td><td> 187-189</td>
<td> 715</td><td>0 = / MeO 0 CF<sub>and</sub></td><td>dirty white solid</td><td></td><td> 166-169</td>
<td> 716</td><td>OMe 0 = X i MeO 0 CF,</td><td>white solid</td><td>M + 1 519</td><td></td>
<td> 717</td><td>0 = / MeO 0</td><td>pale yellow solid</td><td></td><td> 203-205</td>
<td> 718</td><td>oA "' η> AC '<sup>= N</sup> H \ /</td><td>white solid</td><td></td><td> 115-118</td>
<td> 719</td><td>o = / MeO 0 CF, ^ KoK *</td><td>white solid</td><td></td><td> 124-126</td>
<td> 720</td><td>-K- <sub>0</sub>MeO 0 0 / 0</td><td>grease</td><td></td><td></td>
PL 205 059 B1
117
Table I.
<td>Relationship number</td><td>Structure of the molecule</td><td>Look</td><td>Ion Molecular (M)</td><td>Point melting (° C)</td>
<td> 721</td><td>ABOUT II o = s— MeO 0 O / 0</td><td>white solid</td><td></td><td> 189-194</td>
<td> 722</td><td> °<sup>=</sup>? -O ~ <sub>about</sub>MeO O / 0</td><td>white solid</td><td></td><td> 153-155</td>
<td> 723</td><td>about II O — S— eg Μ · Ο O Λ— \</td><td>yellow solid</td><td></td><td> 177-180</td>
118
PL 205 059 B1
Table II
<img file="PL205059B1_D0088.tif" />
PL 205 059 B1
119
<img file="PL205059B1_D0089.tif" />
120
PL 205 059 B1
Table II
<td>USTIMA in vitro braking growth</td><td></td><td></td><td> -</td><td></td><td> +</td><td></td><td></td><td> +</td><td> +</td><td></td><td> •</td><td> •</td><td> •</td><td></td><td></td><td></td><td> •</td><td></td><td> -</td><td></td><td></td><td> •</td><td></td><td> •</td><td></td><td></td><td> •</td><td> •</td><td> •</td><td></td><td></td>
<td>SEPTTR in vitro growth inhibition</td><td> •</td><td></td><td></td><td></td><td></td><td></td><td> •</td><td> +</td><td> +</td><td> +</td><td></td><td> +</td><td> +</td><td> •</td><td> +</td><td> •</td><td> +</td><td> •</td><td></td><td></td><td></td><td></td><td> •</td><td> •</td><td> •</td><td> •</td><td> +</td><td>-ł-</td><td></td><td></td><td> •</td>
<td>RHIZSO in vitro growth inhibition</td><td></td><td> •</td><td> •</td><td> •</td><td> •</td><td> •</td><td></td><td> +</td><td> +</td><td></td><td> •</td><td> +</td><td> +</td><td> •</td><td> •</td><td></td><td></td><td></td><td></td><td> •</td><td> •</td><td> •</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> •</td><td> •</td>
<td>PYRIOR in vitro growth inhibition</td><td> •</td><td></td><td></td><td> •</td><td> •</td><td> •</td><td> •</td><td> +</td><td></td><td> •</td><td></td><td> +</td><td> •</td><td></td><td> •</td><td> •</td><td> •</td><td> •</td><td> +</td><td> •</td><td></td><td></td><td> 1</td><td></td><td> •</td><td> •</td><td> +</td><td> +</td><td> •</td><td> •</td><td></td>
<td>PHYTIN in vitro growth inhibition</td><td></td><td></td><td> •</td><td> •</td><td> +</td><td> +</td><td> •</td><td></td><td> +</td><td> •</td><td></td><td> +</td><td> •</td><td> •</td><td> •</td><td> •</td><td> +</td><td> •</td><td> +</td><td></td><td> •</td><td> •</td><td> •</td><td></td><td></td><td> •</td><td></td><td> •</td><td> •</td><td> •</td><td> •</td>
<td>LEPTNO in vitro growth inhibition</td><td> ·</td><td> •</td><td></td><td> •</td><td> +</td><td> -+</td><td></td><td> +-</td><td> -+</td><td> •</td><td> •</td><td></td><td> ·+</td><td> +</td><td> +</td><td></td><td> +</td><td></td><td> 1</td><td> •</td><td> •</td><td></td><td> •</td><td> +</td><td> •</td><td> •</td><td> •</td><td> +</td><td> +</td><td> +</td><td> •</td>
<td>SEPTTR in vivo Protection after 1 day</td><td> •</td><td> +</td><td> +</td><td> +</td><td></td><td> +</td><td> +</td><td> +</td><td> +</td><td> + +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> + +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> + +</td><td> +</td><td></td><td></td><td> +</td><td> +</td><td> + +</td><td> +</td><td></td><td></td><td> +</td>
<td>PUCCRT in vivo protection after 1 day</td><td> •</td><td> +</td><td> •</td><td> •</td><td> +</td><td> +</td><td> +</td><td> +</td><td></td><td></td><td></td><td> + +</td><td> •</td><td> +</td><td> •</td><td> +</td><td> •</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> •</td><td> •</td><td> +</td><td> •</td><td> +</td><td> + +</td><td> 1</td><td> +</td><td></td>
<td>PLAIN VI in vivo protection after 1 day</td><td></td><td> •</td><td> +</td><td> •</td><td> + +</td><td> + +</td><td> + +</td><td> +</td><td> +</td><td> •</td><td> +</td><td> +</td><td> •</td><td> +</td><td> •</td><td> +</td><td> •</td><td> +</td><td> + +</td><td> •</td><td></td><td> •</td><td></td><td></td><td></td><td> +</td><td> + +</td><td> +</td><td> •</td><td> •</td><td> •</td>
<td>PHYTIN in vivo protection after 1 day</td><td> »</td><td> •</td><td> •</td><td> •</td><td> •</td><td> •</td><td> •</td><td> +</td><td> +</td><td> •</td><td> •</td><td> •</td><td> •</td><td> •</td><td></td><td></td><td> +</td><td> +</td><td> +</td><td></td><td> •</td><td> •</td><td> •</td><td> •</td><td> •</td><td> •</td><td></td><td> •</td><td> 1</td><td></td><td> •</td>
<td>LEPTNO in vivo protection after 1 day</td><td> +</td><td> •</td><td> +</td><td> +</td><td> +</td><td> +</td><td> •</td><td> + +</td><td> +</td><td> +</td><td> +</td><td> + +</td><td> +</td><td> + +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> +</td><td> + +</td><td> +</td><td> + +</td><td> +</td>
<td>ERYSGT in vivo protection after 1 day</td><td></td><td> •</td><td> +</td><td> 1</td><td> •</td><td> •</td><td> •</td><td> +</td><td></td><td> •</td><td> •</td><td></td><td></td><td> •</td><td> •</td><td></td><td> +</td><td> •</td><td> +</td><td> •</td><td></td><td></td><td></td><td></td><td> •</td><td> •</td><td> +</td><td> +</td><td></td><td></td><td></td>
<td>Number Relationship</td><td> 263</td><td>What CM</td><td>at" What CM</td><td>What WHAT «Μ</td><td>What CM</td><td> 268</td><td>& this in</td><td>about h · » CM</td><td>T " h * CM</td><td>CM h * CM</td><td><* ł K- «Μ</td><td>h * CM</td><td>ŁO K. CM</td><td>What f * CM</td><td>CM</td><td>What r * <M</td><td>Ok CM</td><td>about What CM</td><td>so CM</td><td>CM OO CM</td><td>Customs What CM</td><td>00 CM</td><td>60 OO CM</td><td><O o. o CM</td><td>h * o. o CM</td><td>o. o DOWN CM</td><td>o> DOWN CM</td><td>about en CM L.</td><td>r Ok CM</td><td>CM Ok CM</td><td>AFTER Ok CM</td>
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Table II
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Table II
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Table II
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Table II
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Table II
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The compounds of the present invention are preferably administered in the form of compositions. Thus, the present invention also relates to a fungicidal composition comprising an active agent and a phytologically acceptable carrier which comprises a compound according to the invention as active agent. The compositions are concentrated formulations which are dispersed in water or other liquid before application, or are dustable or granular powders which are used without further operations. The compositions are prepared according to procedures which are conventional in the field of agricultural chemistry, but which are new and important for the presence of the compounds of the present invention. Some description has been given for the preparation of the compositions to assist the agrochemists in preparing the desired composition.
The dispersions in which the compounds are used are most often aqueous suspensions or emulsions made from concentrated formulations of the compounds. Such water-soluble, water-dispersible, or emulsifiable preparations are solids, usually known as wettable powders,
PL 205 059 B1
133 or liquids, usually known as emulsion concentrates, or aqueous suspensions. The present invention contemplates all carriers by which the compounds of the present invention can be formulated for delivery for use as fungicides. As can be readily appreciated, any substance to which these compounds can be added can be used as long as it provides the desired utility without significantly affecting the antifungal activity of the compounds of the present invention.
Wettable powders that can be compressed to give water-dispersible granules include an intimate mixture of the active compound, inert carrier, and surfactants. The active compound concentration is usually from about 10% to about 90% by weight, more preferably about 25% to about 75% by weight. In preparing a wettable powder composition, toxic products can be formulated with any finely divided solids such as profilite, talc, chalk, gypsum, fuller's earth, bentonite, attapulgite, starch, casein, gluten, montmorillonite clays, diatomaceous earth, purified silicates or the like. In such operations, the finely divided carrier is ground or mixed with the toxic agent in a volatile organic solvent. Effective surfactants, ranging from about 0.5% to about 10% of the wettable powder, include sulfonate lignins, naphthalene sulfonates, alkyl benzene sulfonates, alkyl sulfates, and nonionic surfactants such as alkylphenol ethylene oxide adducts.
The emulsion concentrates of the compounds of the present invention contain a convenient concentration of the compound, such as from about 10% to about 50% by weight, in a suitable liquid. The compounds are dissolved in an inert carrier, which is a water-miscible solvent or a mixture of water-immiscible organic solvents and emulsifiers. Concentrates can be diluted with water and oil to provide spray mixtures as oil-in-water emulsions. Useful organic solvents include aromatics, especially high-boiling naphthalene and olefinic petroleum fractions such as naphtha. Other organic solvents such as, for example, terpene solvents, including rosin derivatives, aliphatic ketones such as cyclohexanone, and complex alcohols such as 2-ethoxyethanol, may also be used.
Emulsifiers which can advantageously be used in the invention can be readily selected by those skilled in the art and include various nonionic, anionic, cationic, and amphoteric emulsifiers, or a blend of two or more emulsifiers. Examples of nonionic emulsifiers useful in the preparation of emulsion concentrates include poly (alkylene glycol) ethers and condensation products of alkyl and aryl phenols, aliphatic alcohols, aliphatic amines, or fatty acids with ethylene oxide, propylene oxides such as alkylphenol ethoxylates, and polyalkylene or polyalkylene solubilized carboxyl esters. . Cationic emulsifiers include quaternary ammonium compounds and fatty amine salts. Anionic emulsifiers include oil-soluble salts (e.g., calcium) of alkylarylsulfonic acids, oil-soluble polyglycol ether sulfate salts, and corresponding phosphated poly glycol ether salts.
Representative organic liquids that can be used to prepare the emulsion concentrates of the present invention are aromatic liquids such as xylene, propylbenzene fractions or mixed naphthalene fractions, mineral oils, substituted aromatic organic liquids such as dioctyl phthalate, kerosene and dialkylamides of various fatty acids; especially dimethylamides of fatty glycols and glycol derivatives, such as n-butyl ether, diethyl ether, or diethylene glycol methyl ether, and triethylene glycol methyl ether. Mixtures of two or more organic liquids are also often conveniently used to prepare an emulsion concentrate. The preferred organic liquids are the xylene and propylbenzene fractions, with xylene being most preferred. Surface-active dispersants are typically used in liquid compositions in an amount of 0.1 to 20% by weight of the combined weight of the dispersant and active compound. The active compositions may also contain other compatible additives, e.g., plant growth regulators and other biologically active compounds used in agriculture.
Aqueous suspensions include suspensions of the water-insoluble compounds of the present invention dispersed in the aqueous carrier at a concentration ranging from about 5% to about 50% by weight. Slurries are prepared by finely grinding the compound and vigorously mixing it with a vehicle composed of water and surfactants selected from the types discussed above. Inert ingredients such as inorganic salts and synthetic or natural gums can also be added to increase the density and viscosity of the aqueous carrier. Often times, it is most effective to grind and mix the compound simultaneously to form an aqueous mixture and homogenize in an apparatus such as a sand mill, ball mill, or mortar type homogenizer.
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The compounds can also be used as granular compositions which are particularly suitable for soil application. Granular compositions typically contain from about 0.5% to about 10% by weight of the compound dispersed in an inert carrier which consists entirely or largely of coarse attapulgite, bentonite, diatomite, clay, or a similar low-cost material. Such compositions are typically prepared by dissolving the compound in a suitable solvent, and applying it to a granular carrier that has been preformed to a suitable particle size ranging from about 0.5 to about 3 mm. Such compositions may also be formulated by making a dough or paste of the carrier and compound, and grinding and drying to provide the desired granular particles.
Dusts containing the compounds are prepared simply by intimately mixing the compound in powdered form with a suitable dusty agricultural carrier such as, for example, kaolin clay, ground volcanic rock, and the like. Dusts may conveniently contain from about 1% to about 10% by weight of the compound.
The active composition may contain auxiliary surfactants to improve the deposition, wetting and penetration of the composition into the target crop and organism. These auxiliary surfactants can optionally be used as a component of the formulation or as a tank admixture. The amount of auxiliary surfactant will range from 0.01% to 1.0% by volume based on the spray volume of water, preferably 0.05 to 0.5%. Suitable auxiliary surfactants include nonylphenol ethoxylates, ethoxylated synthetic or natural alcohols, sulfosuccinic acid ester salts, organosilicon ethoxylates, fatty amines ethoxylated, and blends of surfactants with mineral or vegetable oils.
The composition may optionally include fungicidal combinations that include at least 1% of one or more compounds of the present invention with another pesticidal compound. Preferably, the composition of the invention comprises at least one other compound selected from the group consisting of insecticides, fungicides, herbicides, nematicides, miticides, arthropodocides, bactericides, and combinations thereof, which are compatible with the compounds of the present invention in the environment selected for use and not antagonistic to the activity of the present invention. unions. Accordingly, in such embodiments, another pesticidal compound is used as an additional toxic agent for the same or a different pesticidal application. The compounds in combination may generally be present in a ratio of from 1: 100 to 100: 1.
The present invention encompasses a method for combating or preventing fungal infections in that a fungicidally effective amount of a compound of the invention is applied to the site of the fungus or where the infection is to be controlled or prevented, excluding living human or animal bodies. The compounds are suitable for treating various plants at fungicidal doses, while showing low phytotoxicity. The compounds are useful in a protective or debilitating manner. The compounds of the present invention are administered by any known technique, either as compounds or as compositions containing the compounds. For example, the compounds can be applied to the roots, seeds, or leaves of plants to control various fungi without degrading the commercial value of the plants. The substances are applied in any of the generally used formulations, e.g., as solutions, dusting powders, wettable powders, liquid concentrates or emulsion concentrates. These substances are conveniently used in a variety of known ways.
The compounds of the present invention have proved to have significant fungicidal activity, particularly for agricultural purposes. The numerous compounds are particularly effective for application to agricultural crops and garden plants, or to wood, paint, leather or carpet backing.
In particular, the compounds are effective against numerous undesirable fungi that infect useful crops. Activity against a number of fungi has been demonstrated, including, for example, the following representative species of fungi: grape downy mildew (Plasmopara viticola - PLASVI), tomato potato blight (Phytophthora infestans - PHYTIN), apple scab (Venturia inaequalis - VENTIN), wheat brown rust (Puccinia recondita - PUCCRT), wheat yellow (Pormiscinia PUCCiST - wheat rust) rice leaf blight (Pyricularia oryzae - PYRIOR), beetroot blight (Cercospora beticola - CERCBE), wheat powdery mildew (Erysiphe graminis - ERYSGT), wheat septoria (Septoria tritici - SEPTTR), rice rot (Rhizoctonia solani - RHIZSO), wheat stalk brittle (Pseudocercosporella herpotrichoides - PSDCHE), peach brown rot (Monilinia fructicola - MONIFC) and wheat leptosporiosis (Leptosphaeria nodorum - LEPTNO). It will be appreciated by those skilled in the art that the effectiveness of the compounds of the present invention against the above fungi determines the general utility of the compounds as fungicides.
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The compounds of the present invention have a wide range of efficacy as fungicides. The exact amount of active ingredient to be applied depends not only on the particular active ingredient used, but also on the particular action desired, the fungal species to be controlled and the stage of their growth, as well as the parts of the plant or other product in contact with the active toxic ingredient. Thus, all the active ingredients of the compounds of the present invention and compositions containing them may not be equally effective at similar concentrations or against the same species of fungi. The compounds and compositions of the present invention are effective for plant application in a disease-inhibiting and phytologically acceptable amount.
Contents118
101 sheets
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103 members in 27 offices
Priority claims15
| Document | Office | Kind | Date |
|---|---|---|---|
| 14997799 | United States of America | P | |
| 14997799 | United States of America | P | |
| 15024899 | United States of America | P | |
| 15024899 | United States of America | P | |
| 62066200 | United States of America | A | |
| 62066200 | United States of America | A | |
| 0021523 | United States of America | W | |
| 0021523 | United States of America | W | |
| 09620662 | – | – | – |
| 60149977 | – | – | – |
| 60150248 | – | – | – |
| US19990149977P | – | – | – |
| US19990150248P | – | – | – |
| US20000620662 | – | – | – |
| WO2000US21523 | – | – | – |
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| CA2374995A1 | Canada | A1 | |
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| WO0105769A2 | World Intellectual Property Organization (WIPO) | A2 | |
| AU6354300A | Australia | A | |
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| CA2376275A1 | Canada | A1 | |
| WO0114339A2 | World Intellectual Property Organization (WIPO) | A2 | |
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| KR20020015382A | Republic of Korea | A | |
| US6355660B1 | United States of America | B1 | |
| EP1196388A2 | European Patent Office (EPO) | A2 | |
| BR0012568A | Brazil | A | |
| EP1202729A1 | European Patent Office (EPO) | A1 | |
| EP1204643A2 | European Patent Office (EPO) | A2 | |
| TR200200112T2 | Türkiye | T2 | |
| KR20020040753A | Republic of Korea | A | |
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| IL147697D0 | Israel | D0 | |
| EP1234823A2 | European Patent Office (EPO) | A2 | |
| EP1234824A1 | European Patent Office (EPO) | A1 | |
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| EP1234826A2 | European Patent Office (EPO) | A2 | |
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| CO5190714A1 | Colombia | A1 | |
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| EP1493733A3 | European Patent Office (EPO) | A3 | |
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| EP1516875A1 | European Patent Office (EPO) | A1 | |
| AU780698B2 | Australia | B2 | |
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| USRE39991E | United States of America | E | |
| EP1204643B1 | European Patent Office (EPO) | B1 | |
| AT397590T | Austria | T | |
| DE60039115D1 | Germany | D1 | |
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| PL205059B1This record | Poland | B1 | |
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| CA2374995C | Canada | C | |
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| EP1516874B1 | European Patent Office (EPO) | B1 |
1 legal event, as the office reported them to INPADOC
Events
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|---|---|---|
| Rectifications of patent specificationRECP | RECP |
Numbers
- Publication
- 205059
- Publication, DOCDB
- 205059
- Publication, EPODOC
- PL205059B
- Application
- 360097
- Application, DOCDB
- 36009700
- Application, EPODOC
- PL20000360097
Titles2
- English
- FUNGICIDAL HETEROCYCLIC AROMATIC AMIDES AND THEIR COMPOSITIONS, METHODS OF USE AND PREPARATION
- Polish
- Heterocykliczny amid aromatyczny, jego kompozycja grzybobójcza oraz sposób zwalczania lub zapobiegania zakażeniom grzybami
Classification
- CPC, 13
- C07D213/81
- A01N43/40
- C07D213/82
- C07D239/28
- C07D241/24
- C07D249/10
- C07D285/01
- C07D401/12
- C07D405/12
- C07D405/14
- C07D409/12
- C07D493/08
- C07D495/08
- IPC, 44
- C07D253 06
- A01N43 24
- C07D405 12
- A01N43 40
- A01N43 54
- A01N43 58
- A01N43 60
- A01N43 72
- A01N47 12
- A01N55 00
- A01P3 00
- C07D213 81
- C07D213 82
- C07D231 20
- C07D231 22
- C07D239 28
- C07D239 32
- C07D241 24
- C07D241 44
- C07D249 10
- C07D261 18
- C07D275 02
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