Avermectin-analogous antiparasitic agents,their preparation and compositions containing them
16 claims: 3 independent, 13 dependent
- 1A compound having the formula:(I) wherein the broken line at the 22-23 position represents an optional double bond and wherein is H or OH and the double bond is absent, or, the double bond is present and R is absent;25.VII.86 for underlined except for c 4-6־ cycloalkyl, C 5 _ 6 -cycloalkenyl 2 -. ...... R is an alpha-branched Cg-Cg alkyl, alkenyl, alkynyl, alkoxyalkyl. or alkylthioalkyl group;a Cg-Cg cycloalkylalkyl group wherein the alkyl group is an alpha-branched C^-Cg alkyl group;a Cg-Cg cycloalkyl or Cg-Cg eycloalkenyl group, either of which may optionally be substituted by methylene or one or more Cj-C/ t alkyl groups or halo atoms;or furyl or thienyl which may optionally be substituted by one or more C^-C^ alkyl groups or halo atoms;ך R J is hydrogen or methyl;25.VII.86 r 4 is H or a 4'-(alpha-L-oleandrosyl)-alpha-L-oleandrosyloxy group of the formula: ־ with the proviso that when R 4 is H, R 2 is not 2-buten2-yl, 2-penten-2-yl or 4-methyl-2-penten-2-yl.
- 13A composition for the treatment and prevention of parasitic Infections in humans and animals, including ectoparasiticidal, insecticidal, acaricidal and anthelmintic compositions, which comprises a compound of the formula (I) as claimed in any one of claims 1 to 9 together with an inert diluent or carrier.
- 16A method of combating insect or parasite infections or infestations, including parasitic conditions in non-human animals and agricultural or horticultural pest infestations, which comprises applying an effective amount of a compound of the formula (I) as claimed in any one of claims 1 to 9 to the organism responsible for said infection or infestation or to the location thereof.
Independent claims3
138 paragraphs in 35 sections, as filed
DESCRIPTION
This invention relates to antiparasitic agents and in particular to compounds related to the avermectins and milbemycins but having a novel substituent group at the 25-position and to a process for their preparation.
The avermectins are a group of broad spectrum antiparasitic agents referred to previously as the C-076 compounds. They are produced by fermenting a strain of the microorganism Streptomyces avermitilis ATCC 31267, 31271 or 31272 under aerobic conditions in an aqueous nutrient medium containing inorganic salts and assimilable sources of carbon and nitrogen. The morphological and cultural properties of the strains ATCC 31267, 31271 and 31272 are described in detail in British Patent Specification no. 1573955 which also describes the isolation and the chemical structure of the eight individual components which make up the C-076 complex. The milbemycins are structurally related macrolide antibiotics lacking the sugar residues at the 13-position. They are produced by fermentation, for example as described in British Patent Specification no. 1390336 and European Patent Application publication no. 0170006.
We have now discovered that by adding certain specified carboxylic acids, or derivatives thereof, to the fermentation broth of an avermectin producing organism it is possible to obtain novel compounds, related co the avermectins but having an unnatural substituent group at the 25-position in place of the isopropyl or sec-butyl group which is normally present. The novel compounds are highly active antiparasitic agents having particular utility as anthelmintics, ectoparasiticides, insecticides and acaricides.
Thus, according to one aspect of the invention there is provided a process for producing a novel avermectin derivative having an unnatural substituent group at the 25-position which comprises adding an assimilable carboxylic acid, or a salt, ester or amide thereof or oxidative precursor therefor, as herein defined, to a fermentation broth of an avermectin producing organism, and isolating the novel avermectin derivative.
Conventional chemical transformation reactions can be used to prepare further derivatives from these compound.«?. Thus, according to a further aspect of the invention there are provided compounds having the formula:
<img file="IL79523A_D0001.tif" />
wherein the broken line at the 22-23 position represents an optional double bond and wherein R<sup>1</sup> is H or OH and the double bond is absent, or, the double bond is present and R is absent;
25.VII.86 for underlined except <sup>for C</sup>4-6־ cycloalkyl, C5_6־cycloalkenyl
— —־־ -------- ------ 9
R is an alpha-branched Cq-Cg alkyl, alkenyl, alkynyl, alkoxyalkyl or alkylthioalkyl group; a Cg-Cg cycloalkylalkyl group wherein the alkyl group is an alpha-branched Cp-Cg alkyl group; a Cg-Cg cycloalkyl or Cq-Cg cycloalkenyl group, either of which may optionally be substituted by methylene or one or more 010־/, alkyl groups or halo atoms; or furyl or thienyl which may optionally be substituted by one or more Cj-C^ alkyl groups or halo atoms;
נR is hydrogen or methyl ;
25.VII.86 i<sub>s</sub> h or a 4’-(alpha-L-oleandrosyl)-alpha-L-oleandrosyloxy group of Che formula:
<img file="IL79523A_D0002.tif" />
with the proviso that when R<sup>4</sup> is H, R<sup>2</sup> is not 2-buten-2-yl
2-penten-2-yl or 4-methyl-2-penten-2-yl.
In the above definition, non-alpha branched alkyl groups containing 3 or more carbon atoms may be straight or branched chain. Halo means fluoro, chloro, bromo or iodo. Alpha-branched means Chat the carbon atom attached co Che 25-ring position is a secondary carbon atom linked co two further carbon atoms. When R is alkyl of 5 or more carbon atoms, the remainder of the alkyl chain may be straight or branched chain.
Preferred compounds of Che formula I are Chose wnerein R . is 4’-(alpha-L-oleandrosyl)-alpha-L-oleandrosyloxy. Also preferred
ר are compounds of Che formula I wherein R” is a or C^ cycloalkyl or cycloalkenyl group which may optionally be substituted by one or more C.-C, alkyl grouos, cyclopentyl being particularly <sup>1 4</sup> 2 preferred. In another grouo of preferred comnounds R is cyclobutyl. In a further group of preferred compounds R is a 5 or 6 membered oxygen or sulphur containing heterocyclic ring, particularly a 3-thienyl or 3-furyl ring, which may optionally be substituted by one or more C.-C, alkyl groups or halogen acorns.
In a yec further group of preferred compounds, R is a C^-Cg 25 .VII. 86 alkyl thioalkyl group, particularly a l-mechylthioethyl group.
In accordance with the invention the compounds of formula I wherein R<sup>1</sup> is OH and the double bond is absent or wherein the 1 4 double bond 18 present and R is absent and R is 4’-(alpha-Loleandrosyl)-alpha-L-oleandrosyloxy are prepared by fermenting an avermectin producing organism, such as a strain of the organism Streptomyces avermitilis ATCC 31267, 31271 or 31272, in the 2 presence of the appropriate carboxylic acid of the formula R CO״H, 2 <sup>Z</sup> wherein R is as previously defined, or a salt, ester, or amide thereof or oxidative precursor therefor. The acid is added to the brorii fermentationieither at the time of inoculation or at intervals during the fermentation. Production of the compounds of formula (I) may be monitored by removing samples from the fermentatior^, extracting with an organic solvent and following the appearance of the compound of formula (I) by chromatography, for example using high pressure liquid chromatography. Incubation is continued until the yield of the compound of formula (I) has been maximised, generally for a period of from 4 to 6 days.
A preferred level of each addition of the carboxylic acid or derivative thereof is between’0.05 and 1.0 grams per litre. The best yields of the compounds of formula (I) are obtained by bi^th gradually adding the acid to the fermentatloty, for example by daily additions of the acid or derivative thereof over a period of several days. The acid is preferably added as a salt, such as the sodium or ammonium salt, but may be added as an ester, such as the methyl or ethyl ester or as an amide. Alternative substrates broth which may be used in the fermentation?are derivatives which are oxidative precursors for the carboxylic acids; thus, for example suitable substrates would be aminoacids of the formula 2 2
R CH(NH<sub>2</sub>)CO<sub>2</sub>H, glyoxylic acids of the formula R COCO<sub>2</sub>H, methylamine derivatives of the formula R<sup>2</sup>CH2NH2> substituted lower alkanoic acids of- the formula R<sup>2</sup>(CHn) CO״H wherein n is 2, 4 or 6, <sup>2</sup> 2 <sup>2 </sup>methanol derivatives of the formula R CH^OH or aldehydes of the
2 <sup>Z</sup> formula R CHO, wherein R is as previously defined. The media b^oth used for the fermentation7may be a conventional complex media containing assimilable sources of carbon, nitrogen and other trace elements. However we have found that for better results a strain of the organism derived from Streptomyces avermitilis ATCC 31271 which gives improved yields of a compound of formula I when
PLC 414/417 cultured in a semi-defined medium may be used and this has the advantage that crude solvent extracts contain significantly less unwanted material which greatly simplifies the subsequent isolation and purification stages. Such a strain has been deposited with the National Collection of Industrial Bacteria (NCIB) on 19th July, 1985 under the accession number NCIB 12121. The morphological and cultural characteristics of this strain are otherwise generally as described in British Patent specification no. 1573955 for strain ATCC 31267.
After fermentation for a period of several days at a temperature preferably in the range of from 24 to 33°C,the fermentation broth is centrifuged or filtered and the mycelial cake is extracted with acetone or methanol. The solvent extract is concentrated and the desired product is then extracted into a water-immiscible organic solvent, such as methylene chloride, ethyl acetate, chloroform, butanol or methyl isobutyl ketone. The solvent extract is concentrated and the crude product containing the compounds of formula (I) is further purified as necessary by chromatography, for example using preparative reverse phase, high
25.VII.86 pressure liquid chromatography.
The product is generally obtained as a mixture of the 4 compounds of formula (I) wherein R is 4’-(alpha-L-oleandrosyl)alpha-L-oleandrosyloxy, is OH and the double bond absent or R^ is absent and the double bond is present and wherein R is H or
CH^; however the proportions can vary depending on the particular carboxylic acid employed and the conditions used.
We have found that a broad range of carboxylic acids as 2 broth defined by R COjH may be added to the fermentation^to yield avermectins having a novel substituent group at the 25-position.
Examples of particular acids which may be employed include the following:
2-methylvaleric acid
2-methylpent-4-enoic acid
2-methylthiopropionic acid
2-cyclopropyl propionic acid cyclobutane carboxylic acid
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25.VU.86
25.VII.86 cyclopentane carboxylic acid ^cyclohexane carboxylic acid cycloheptane carboxylic acid I*
2- methylcyclopropane carboxylic acid
3- cyclohexene-l-carboxylic acid and thiophene-3-carboxylic acid
In one particular and preferred aspect of the invention, the fermentation is performed in the presence of cyclopentane carboxylic acid sodium salt to yield predominantly the compound of 1 2 formula (I) wherein R is OH, the double bond is absent, R is 3 4 cyclopentyl, R is CH^ and R is 4’-(alpha-L-oleandrosyl)-alpha-
4-oleandrosyloxy.
In another preferred aspect of the invention, the fermentation is performed in the presence of thiophene-3carboxylic acid sodium salt to yield predominantly the compound of 1 2 formula (I) wherein R is OH, the double bond is absent, R is 3 4 thien-3-yl, R is CH^ and R is 4'-(alpha-L-oleandrosyl)-alpha-
4-oleandrosyloxy.
In a further preferred aspect of the invention the fermentation is performed in the presence of 2-methylthiopropionic acid sodium salt to yield predominantly the compound of formula 1 2 (I) wherein R is OH, the double bond is absent, R is 3 4
1-methylthioethyl, R^ is CH and R is 4’-(alpha-L-oleandrosyl)alpha-4-oleandrosyloxy.
Compounds of the formula (I) wherein the double bond is present and R^ is absent may alternatively be prepared from the corresponding compound of formula (I) wherein R^ is OH and the double bond is absent by a dehydration reaction. The reaction is performed by first selectively protecting the hydroxyl groups at the 5 and 4 positions, e.g. as the t-butyldimethylsilyloxy acetyl derivative, then reacting with a substituted thiocarbonyl halide, such as (4-methylphenoxy)thiocarbonyl chloride, followed by heating in a high boiling point solvent, e.g. trichlorobenzene, to effect the dehydration. The product is finally deprotected to give the unsaturated compound. These steps together with appropriate reagents and reaction conditions are described in United States patent 4328335.
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25.VII.86
The compounds of formula I wherein R is H may also be 3 prepared from the corresponding compounds wherein R is CH^ by demethylation. This reaction is achieved by treating the
5-methoxy compound, or a suitably protected derivative thereof, with mercuric acetate and hydrolysing the resulting 3-acetoxy enol ether with dilute acid to give the 5-keto compound. This is then reduced using, for example, sodium borohydride to yield the
5-hydroxy derivative. Appropriate reagents and reaction conditions for these steps are described in United States patent 4423209.
The compounds of formula I wherein R<sup>1</sup> is H and the double bond is absent can be prepared from the corresponding compound wherein the double bond is present and is absent, by selective catalytic hydrogenation using an appropriate catalyst. For example the reduction may be achieved using tris(triphenylphosphine)rhodium (I) chloride as described in European patent application publication no. 0001689.
— 4
The compounds of formula (I) wherein R is H are prepared 4 from the corresponding compounds wherein R is 4’-(alpha-L-oleandrosyl)-alpha-L-oleandrosyloxy by removing the 4’-(alpha-L-oleandrosyl)-alpha-L-oleandrose group by mild hydrolysis with an acid in an aqueous organic solvent to yield the aglycone having a hydroxy group at the 13-position; this is then halogenated, for example by reaction with a benzene sulphonyl halide, to yield the 13-deoxy-13-halo derivative which is finally selectively reduced, for example using tributyltin hydride. In order to avoid unwanted side reactions it is desirable to protect any other hydroxy groups which may be present, for example using a tert-butyldimethylsilyl group. This is then readily removed after the halogenation or reduction step by treatment with methanol containing a trace of acid. All these steps together with appropriate reagents and reaction conditions for their performance are described in European patent application publication no. 0002615.
1
Compounds of the formula (I) wherein R is H, R is either H or OH and the double bond is absent, may also be prepared by adding the appropriate carboxylic acid, or a salt, ester or amide
PLC 414/417
25.VII.86 thereof or oxidative precursor therefor, to a fermentation of a milbemycin producing organism, and isolating the desired milbemycin derivative having an unnatural substituent group at the 25-position. Examples of milbemycin producing organisms include for instance Streptomyces hygroscopicus strain NRRL 5739 as described in British Patent Sepcification no. 1390336, Streptomyces cyaneogriseus subsp. noncyanogenus NRRL 15773 as described in European patent application publication no. 0170006 and Streptomyces thermoarchaenis NCIB 12015 as described in GB 2166436A.
The compounds of the invention are highly active antiparasitic agents having particular utility as anthelmintics, ectoparasiticides, insecticides and acaricides.
Thus the compounds are effective in treating a variety of conditions caused by endoparasites including, in particular, helminthiasis which is most frequently caused by a group of parasitic worms described as nematodes and which can cause severe economic losses in swine, sheep, horses and cattle as well as affecting domestic animals and poultry. The compounds are also effective against other nematodes which affect various species of animals including, for example, Dirofilaria in dogs and various parasites which can infect humans including gastro-intestinal parasites such as Ancylostoma, Necator, Ascaris, Strongyloides, Trichinella, Capillaria, Trichuris, Enterobius and parasites which are found in the blood or other tissues and organs such as filiarial worms and the extra intestinal stages of Strongyloides and Trichinella.
The compounds are also of value in treating ectoparasite infections including in particular arthropod ectoparasites of animals and birds such as ticks, mites, lice, fleas, blowfly, biting insects and migrating dipterous larvae which can affect cattle and horses.
The compounds are also insecticides active against household pests such as the cockroach, clothes moth, carpet beetle and the housefly as well as being useful against insect pests of stored grain and of agricultural plants such as spider mites, aphids, caterpillars and against migratory orthopterans such as locusts.
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The compounds of formula (I) are administered as a formulation appropriate to the specific use envisaged and to the particular species of host animal being treated and the parasite or insect involved. For use as an anthelmintic the compounds may be administered orally in the form of a capsule, bolus, tablet or preferably a liquid drench, or alternatively, they may be administered by injection or as an implant. Such formulations are prepared in a conventional manner in accordance with standard veterinary practice. Thus capsules, boluses or tablets may be prepared by mixing the active ingredient with a suitable finely divided diluent or carrier additionally containing a dislntigrating agent and/or binder such as starch, lactose, talc, magnesium stearate etc. A drench formulation may be prepared by dispersing the active ingredient in an aqueous solution together with dispersing or wetting agents etc. and injectable formulations may be prepared in the form of a sterile solution which may contain other substances, for example, enough salts or glucose to make the solution isotonic with blood. These formulations will vary with regard to the weight of active compound depending on the species □f host animal to be treated, the severity and type of infection and the body weight of the host. Generally for oral administration a dose of from about 0.001 to 10 mg per Kg of animal body weight given as a single dose or in divided doses for a period of from 1 to 5 days will be satisfactory but of course there can be instances where higher or lower dosage ranges are indicated and such are within the scope of this invention.
As an alternative the compounds may be administered with the animal feedstuff and for this purpose a concentrated feed additive or premix may be prepared for mixing with the normal animal feed.
For use as an insecticide and for treating agricultural pests the compounds are applied as sprays, dusts, emulsions and the like in accordance with standard agricultural practice.
The invention is illustrated by the following Examples in which Examples 1 to 19 are Examples of the preparation of compounds of the formula (I), Example 20 is an example of a drench formulation and Examples 21 and 22 illustrate the antiparasitic and insecticidal activity of the compounds.
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EXAMPLE
25-Cyclopentyl-avermectin A2
A suspension of a slope culture of S. avermitilis NCIB 12121 was inoculated into 600 mis of a medium containing lactose (12.0g), distillers solubles (8.0g) and yeast extract (3.0g), contained in a 3 litre flask, and incubated at 28°C for 3 days. The inoculum was used to inoculate 16 litres of a medium containing soluble starch (640g), ammonium sulphate (32g), dipotassium hydrogen phosphate (16g), sodium chloride (16g), magnesium sulphate 7^0 (16g), calcium carbonate (32g), soluble yeast extract (6.4g), ferrous sulphate 7^0 (0.016g), zinc sulphate 7H,0 (0.016g) and manganese chloride 4H_0 (0.016g), <sup>L 1</sup> broih contained in a 20 litre fermenter. The fermentationj at 28°C, rgih ywas incubated with agitation at 250 r.p.m. and aerated at 15 litres per minute. Cyclopentane carboxylic acid sodium salt (1.6g) was added after 24 hours and again after 48 and 72 hours incubation and the fermentation was continued for 120 hours. After this time the mycelium was removed by filtration and extracted with acetone: IN-hydrochloric acid (100:1; 3x7 litres). The extract was concentrated to approximately 2 litres under reduced pressure and extracted with methylene chloride (2x5 litres). The methylene chloride extract was concentrated to dryness to give the crude product as a mobile, oil which was dissolved in diethyl ether and added to a column of silica gel (1 kg). The column was eluted with diethyl ether collecting 100 ml fractions. Fractions 20-40 were combined and the solvent evaporated to yield partially purified material. The product was dissolved in a mixture of methanol and water (4:1) and chromatographed on a C18 Micro-Bondapack column (50 mm x 50 cm) in a Waters Prep 500 high pressure liquid chromatograph using the same solvent at a flow rate of 100 ml per minute. Fractions 35 to 50 containing the desired product were combined and rechromatographed on a C18 Zorbax ODS (Trademark, Dupont) column (21 mm x 25 cm) eluting with a mixture of methanol and water (4:1) at a flow rate of 9 mis. per minute. The relevant fractions were combined and the solvent evaporated to yield the compound of formula (I) wherein R^ is OH,
PLC 414/417
3 4 the double bond is absent, R is cyclopentyl, R is CH^ and R is 4’-(alpha-L-oleandrosyl)-alpha-L-oleandrosyloxy as a white powder, m.p. 150.5-151°C. The structure of the product was confirmed by mass spectrometry and by C13 nuclear magnetic resonance spectroscopy as follows:
Fast atom bombardment mass spectrometry was performed on a VG Model 7070E mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na)* observed at m/e 939 (theoretical 939).
Electron impact mass spectrometry was performed using a VG Model 7O7OF mass spectrometer. The m/e values for the principal fragments were: 335, 317, 275, 257, 251, 233, 205, 181, 179, 145, 127, 113, 111, 95 and 87.
The 13C nuclear magnetic resonance spectral data were obtained on a Brucker Model WM-250 spectrometer with a sample concentration of 20 mg/ml in deuterochloroform. The chemical shifts in parts per million relative to tetramethylsilane were: 14.1, 15.3, 17.8, 18.5, 19.9, 20.3, 24.6, 25.9, 26.2, 29.3, 34.4 (2C), 34.7, 36.7, 37.8, 39.8, 40.5, 41.0, 41.3, 45.8, 56.4, 56.6,
57.8, 67.4; 67.6, 68.0, 68.3, 68.7, 69.9, 70.5, 76.0, 77.6 (2C),
78.3, 79.5, 80.7 (2C), 81.8, 94.9, 98.7, 99.8, 117.7, 118.5,
119.8, 125.0, 135.8, 136.3, 137.8, 140.1 and 173.8.
EXAMPLE 2
A suspension of a slope culture of S. avermitilis ATCC 31271 was inoculated into 50 mis of a medium containing lactose (1.0g), distillers solubles (0.75g) and yeast extract (0.25g), contained in a 350 ml flask, and incubated at 28°C for 3 days. This inoculum (4 mis) was used to inoculate each of 50 flasks containing 50 mis of medium containing corn starch (2.0g), soya flour (0.35g) and yeast extract (0.25g) contained in a 350 ml flask, and the flasks were incubated at 28°C.
After 24 hours, cyclopentane carboxylic acid sodium salt (5 mg) was added to each flask and incubation was continued for a further 5 days. After this time the contents of the flasks were together bulked and the mycelium separated by centrifugation. The mycelium was extracted with acetone:IN-hydrochloric acid (100:1) and the
PLC 414/417 acetone extract concentrated to dryness. The extract was analysed by high pressure liquid chromatography and was shown to contain a product identical with the product of Example 1.
EXAMPLE 3
An inoculum was prepared as described in Example 1 and used to inoculate 50 mis of the medium as used in Example 1, contained in 350 ml flasks. After incubation for 24 hours, 2-aminocyclopentyl acetic acid (cyclopentylglycine) (5 mg) was added and the fermentation was continued for a further 5 days. The product was recovered by extraction of the mycelium with acetone and methylene chloride. The extract was analysed by HPLC which indicated that the product contained a compound identical to the product of Example 1.
EXAMPLE 4
The conditions of Example 3 were followed except that cyclopentyl methanol was used as substrate with similar results.
EXAMPLE 5
The conditions of Example 3 were followed except that the methyl ester of cyclopentane carboxylic acid, dissolved in methanol, was used as substrate with similar results.
EXAMPLE 6
The conditions of Example 3 were followed except that cyclopentane carboxylic acid, dissolved in methanol was used as substrate with similar results.
EXAMPLE 25-(Thien-3-yl)avermectin
A suspension of a slope culture of S. avermitllis NCIB 12121 was inoculated into 600 mis of a medium containing lactose (12.0g), distillers solubles (8.0g) and yeast extract (3.0g), contained in a 3 litre flask, and incubated at 28°C for 3 days. The inoculum was used to inoculate 16 litres of a medium containing soluble starch (640g), ammonium sulphate (32g),
PLC 414/417 dipotassium hydrogen phosphate (16g), sodium chloride (16g), magnesium sulphate 7^0 (16g), calcium carbonate (32g), soluble yeast extract (6.4g), ferrous sulphate 7^0 (0.016g), zinc sulphate 7^0 (0.016g) and manganese chloride 4^0 (g.O^g) , contained in a 20 litre fermenter. The fermentation/was incubated at 28°C, with agitation at 250 r.p.m. and aerated at 15 litres per minute. Thiophene-3-carboxylic acid sodium salt (1.6g) was added after 24 hours and again after 48 and 72 hours incubation and the fermentation was continued for 120 hours. After this time the mycelium was removed by filtration and extracted with acetone: IN-hydrochloric acid (100:1; 3x7 litres). The extract was concentrated to approximately 2 litres under reduced pressure and extracted with methylene chloride (2x5 litres). The methylene chloride extract was concentrated to dryness to give the crude product as a mobile oil which was dissolved in diethyl ether and added to a column of silica gel (1 kg). The column was eluted with diethyl ether collecting 200 ml fractions. Fractions 32-45 were combined and the solvent evaporated to yield partially purified material. The product was dissolved in a mixture of methanol and water (3:1) and chromatographed on a C18 Micro-Bondapack column (50 mm x 50 cm) in a Waters Prep 500 high pressure liquid chromatograph using the same solvent at a flow rate of 100 ml per minute. Fractions 27 to 36 containing the desired product were combined and rechromatographed on a C18 Zorbax ODS (Trademark, Dupont) column (21 mm x 25 cm) eluting with a mixture of methanol and water (3:1) at a flow rate of 9 mis. per minute. The relevant fractions were combined and the solvent evaporated to yield the compound of formula (I) wherein is OH, 2 3 4 the double bond is absent, R is thien-3-yl, R is CH^ and R is 4'-(alpha-L-oleandrosyl)-alpha-L-oleandrosyloxy as a white powder, m.p. 167°C. The structure of the product was confirmed by mass spectrometry as follows:
Fast atom bombardment mass spectrometry was performed on a VG Model 7Q70E mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na)<sup>+</sup> observed at m/e 953 (theoretical 953).
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Electron impact mass spectrometry was performed using a VG Model 7O7OF mass spectrometer. The m/e values for the principal fragments were: 349. 331, 275, 265, 257, 247, 237, 219, 195, 145, 127, 113, 95 and 87.
EXAMPLE 8
A vegetative cell suspension of S. avermitilis NCIB 12121, held at -60°C in 102 v/v aqueous (2 mis) glycerol was inoculated into 50 ml of medium containing lactose (1.0 g), distillers solubles (0.75 g) amd yeast extract (0.25 g) contained in a 300 ml conical flask and incubated at 28°C for 24 hours, with shaking. The inoculum was then added to 600 ml of the above medium contained in a 3 litre flask and the mixture was incubated at 28°C for 24 hours with shaking. The product was used to inoculate 10 litres of the above medium contained in a 16 litre fermenter which was incubated at 28°C for 24 hours at an agitation speed of 350 r.p.m. with aeration at 10 litres of air per minute. This broth! fermentation/(600 ml) was used to inoculate 16 litres of a medium containing partially hydrolysed starch (640 g) ammonium sulphate (32 g), dipotassium hydrogen phosphate (16g), sodium chloride (16 g) magnesium sulphate /HgO (16 g), calcium carbonate (32 g), soluble yeast extract (6.4 g), ferrous sulphate 7H?0 (0.016g), zinc sulphate 71^0 (0.016 g), and manganese chloride 4112^^(0^016 g), contained in a 20 litre fermenter. The fermentation/was incubated at 28°C, with agitation at 350 r.p.m. and aerated at 15 litres per minute. Cyclobutane carboxylic acid sodium salt (1.6 g) was added after 24 hours and again after 48 and 72 hours incubation and the fermentation was continued for 120 hours. After this time the mycelium was removed by filtration and extracted with acetone (3x7 litres). The extract was concentrated to approximately 2 litres under reduced pressure and extracted with methylene chloride (2x5 litres). The methylene chloride was concentrated to dryness to give the crude product as a mobile oil. This was taken up in iso-octane (150 ml) and the solution extracted with a mixture of methanol (95 ml) and water (5 ml). Evaporation of the methanolic extract gave partially purified material which was separated into its individual components by high pressure liquid chromatography as follows: The residue was dissolved in a little methanol and
PLC 414/417 chromatographed in a C18 Micro-Bondapack column (50 mm x 50 cm) in a Waters Prep 500 high pressure liquid chromatograph using a mixture of methanol/water (4:1) at a flow rate of 100 ml per minute. Fractions 1 to 4 were combined and used in Example 9, fractions 5 to 9 were combined and used in Example 10, fractions 10 to 19 were combined and used in Example 11 and fractions 20 to 35 were combined and used in Example 12.
EXAMPLE 9 1 3
25-Cyclobutyl-avermectin B2 (R <sup>β</sup> OH, R = H)
The combined fractions 1 to 4 from Example 8 were evaporated to dryness and the residue was re-chromatographed on a C18 Zorbax ODS (Trademark, Dupont) column (21 mm x 25 cm) eluting with a mixture of methanol and water (3:1) at a flow rate of 9mls per minute. The relevant fractions were combined, the solvent evaporated and the product subjected to a final purification on a Silica Spherisorb 5 micron (Trademark, HPLC Technology) column (10.5 mm x 25 cm) eluting with a mixture of methylene chloride and methanol (98:2) at a flow rate of 4 mis per minute. The relevant fractions were combined and the solvent evaporated to yield the compound of formula (I) wherein R^ is OH, the double bond is 2 3 4 absent, R is cyclobutyl, R is H and R is 4 -(alphaL-oleandrosyl)-L-oleandrosyloxy, as a white powder, m.p. 110-112’C. The structure of the product was confirmed by mass spectrometry as follows:Fast atom bombardment mass spectrometry was performed on a VG Model 7070E mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na)<sup>+</sup> observed at m/e 911 (theoretical 911).
Electron impact mass spectrometry was performed using a VG Model 7070F mass spectrometer. The m/e values for the principal fragments were: 321, 303, 261, 257, 237, 219, 209, 191, 179, 167, 145, 127, 113, 111, 95 and 87.
EXAMPLE 10 1 3
25-Cyclobutyl-avermectin A2 (R = OH, R = CH^) The combined fractions 5 to 9 from Example 8 were evaporated to dryness and the residue was rechromatographed twice on a C18 Zorbax ODS (Trademark, Dupont) column, (21 m x 25 cm) eluting
PLC 414/417 with a methanol and water mixture (77:23) at a flow rate of 9 mis per minute. Suitable fractions were combined and evaporated to yield the compound of formula (I) wherein R. is OH, the double 2 3 <sup>1</sup> 4 bond is absent, R is cyclobutyl, R is CH^ and R is 4'-(alpha-L-oleandrosyl)-L-oleandrosyloxy as a white powder m.p. 135140°־C.
The structure of the product was confirmed by mass spectrometry as follows:
Fast atom bombardment mass spectrometry was performed on a VG Model 7070E mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na)<sup>+</sup> observed at m/e 925 (theoretical 925).
Electron impact mass spectrometry was performed using a VG Model 7070F mass spectrometer. The m/e values for the principal fragments were: 596, 454, 321, 303, 275, 237, 219, 209, 191, 179, 167, 145, 127, 113, 111, 95 and 87.
EXAMPLE 11
25-Cyclobutyl-avermectin Bl (22,23-Double bond present, R <sup>a</sup> H)
The combined fractions 10 to 19 from Example 8 were evaporated to dryness and the residue dissolved in methanol and chromatographed on a C18 Zorbax ODS (Trademark, Dupont) column (21 mm x 25 cm) eluting with a mixture of methanol and water (4:1) at a flow rate of 9 mis per minute. The relevant fractions were combined and the solvent evaporated to give a product which was re-chromatographed on a Silica Zorbax SIL (Trademark, Dupont) column (21 mm x 25 cm) eluting with a mixture of dichloromethane and methanol (98.5:1.5) at a flow rate of 9 mis per minute. The relevant fractions were combined and the solvent evaporated to yield the compound of formula (I) wherein R^ is absent, the double 2 3 4 bond is present, R is cyclobutyl, R is H and R is 4’-(alpha-L-oleandrosyl)-L- oleandrosyloxy, as a white powder m.p. 135-138°C. The structure of the product was confirmed by mass spectrometry as follows:Fast atom bombardment mass spectrometry was performed on a VG Model 7070E mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na)<sup>+</sup> observed ad m/e 893 (theoretical 893).
PLC 414/417
Electron impact mass spectrometry was performed using a VG Model 7070F mass spectrometer. The m/e values for the principal fragments were: 303, 261, 257, 219, 191, 167, 145, 127, 113, 111, 95 and 87.
EXAMPLE 12
ל
25-Cyclobutyl-avermectin Al (22,23-Double bond present, R = CH^) The combined fractions 20 to 35 from Example 8 were evaporated to dryness and the residue chromatographed on a C18 Zorbax ODS (Trademark, Dupont) column (21 mm x 25 cm) at a flow rate of 9 mis per minute. The relevant fractions were combined, the solvent evaporated and the product was rechromatographed on a Silica Sperisorb 5 micron (Trademark, HPLC Technology) column (10.5 mm x 25 cm) eluting with a mixture of dichloromethane and methanol (98.5 : 1.5) at a flow rate of 4 mis per minute.
Combination of the relevant fractions followed by evaporation gave the compound of formula (I) wherein R^ is absent, the double bond 2 3 4 is present, R is cyclobutyl, R is CH^ and R is 4’-(alpha-L-oleandrosyl)-L- oleandrosyloxy as a white powder m.p. 120-124°C. The structure of the product was confirmed by mass spectrometry as follows:Fast atom bombardment mass spectrometry was performed on a VG Model 7070E mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na)<sup>+</sup> observed at m/e 907 (theoretical 907).
Electron impact mass spectrometry was performed using a VG Model 7070F mass spectrometer. The m/e values for the principal fragments were: 578, 303, 275, 257, 219, 191, 167, 145, 127, 113, 111, 95 and 87.
EXAMPLE 25-(Cyclohex-3-enyl)avermectin A2
The medium and conditions of Example 1 were followed except that 3-cyclohexenoic acid sodium salt was used as the substrate to yield the compound of formula I wherein R^ is OH, the double bond
3 4 is absent, R is cyclohex-3-enyl, R is CH^ and R is 4'-(alpha-L-oleandrosyl)-alpha-L- oleandrosyloxy as a white powder mpt. 131-5<sup>e</sup>C.
PLC 414/417
The structure of the product was confirmed by mass spectrometry as follows:
Fast atom bombardment mass spectrometry was performed on a VG Model 7070E mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na) observed at m/e 951 (theoretical 951).
Electron impact mass spectrometry was performed using a VG Model 7070F mass spectrometer. The m/e values for the principal fragments were: 624, 480, 347, 329, 275, 263, 245, 235, 217, 205, 193, 179, 145, 127, 113, 111, 95 and 87.
EXAMPLE 25-Cyclohexyl avermectin A2
The medium and conditions of Example 1 were followed except that cyclohexane carboxylic acid sodium salt was used as the substrate to yield the compound of formula I wherein R is OH, R
4 S is cyclohexyl, R is CH^ and R is 4'-(alpha-oleandro^yl)-alpha-Loleandrosyloxy as a white powder mpt. 112-117°C.
The structure of the product was confirmed by mass spectrometry as follows:
Fast atom bombardment mass spectrometry was performed on a VG Model 7O7OE mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na)<sup>+</sup> observed at m/e 953 (theoretical 953).
Electron impact mass spectrometry was performed using a VG Model 7O7OF mass spectrometer. The m/e values for the principal fragments were: 624, 482, 349, 331, 275, 265, 247, 237, 219, 207, 195, 179, 145, 127, 113, 111, 95 and 87.
EXAMPLE
25.V11.86 25-(l-Methylthioethyl)avermectin A2
The medium and conditions of Example 1 were followed except that 2-methylthiopropionic acid sodium salt was used as the substrate to yield the compound of formula I wherein R. is OH, R
4 <sup>1</sup> is 1-methylthioethyl, R is CH_ and R is 4'-(alpha-Ls S <sup>J</sup> oleandro^yl)-oleandrosyloxy as a white powder, m.p. 134-138°C.
PLC 414/417
The structure of the product was confirmed by mass spectrometry as follows:
Fast atom bombardment mass spectrometry was performed on a VG Model 7070E mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na)<sup>+</sup> observed at m/e 945 (theoretical 945).
Electron impact mass spectrometry was performed using a VG Model 7070F mass spectrometer. The m/e values for the principal fragments were: 341, 323, 275, 263, 257, 239, 211, 187, 179, 145, 127, 113, 111, 95 and 87.
EXAMPLE
25.V11.86 25-(2~Methylcyclopropyl)avermectin A2
The medium and conditions of Example 1 were followed except that 2-methylcyclopropane carboxylic acid sodium salt was used as the substrate to yield the compound of formula I wherein is OH, 2 3
R is 2-methylcyclopropyl, R is CH^ and R^ is 4’-(alpha-Loleandrosyl)-oleandroxyloxy, as a white powder, m.p. 147-150°C.
The structure of the product was confirmed by mass spectrometry as follows:
Fast atom bombardment mass spectrometry was performed on a VG Model 7070E mass spectrometer using a sample matrix of triethylene glycol with solid sodium chloride. (M + Na)<sup>+</sup> observed at m/e 925 (theoretical 925).
Electron impact mass spectrometry was performed using a VG Model 7O7OF mass spectrometer. The m/e values for the principal fragments were: 596, 454, 303, 275, 237, 219, 209, 191, 179, 167, 145, 127, 113, 111, 95 and 87.
EXAMPLE 17
The procedure of Example 1 was followed but using the sodium salt of the following carboxylic acids as substrate instead of cyclopentane carboxylic acid to yield the appropriate 25~substituted avermectins of formula (I) wherein R^ is OH and the
PLC 414/417 double bond is absent or wherein the double bond is present and R<sup>1 </sup>3 4 is absent, R is H or OH and R is 4’-(alpha-L-oleandrosyl)-alphaL-oleandrosyloxy:
25.VII.86
25.VII.86
2-methylvaleric acid
2.3- dimethylbutyric acid 2-methylhexanoic acid 2-methylpent-4-enoic acid 2-methylpentanoic acid
2- cyclopropyl propionic acid cycloheptane carboxylic acid
4.4- difluorocyclohexane carboxylic acid 4-methylenecyclohexane carboxylic acid
3- methylcyclohexane carboxylic acid cyclopentene-l-carboxylic acid 1-cyclohexene carboxylic acid tetrahydropyran-4-carboxylic acid thiophene-2-carboxylic acid 3-furoic acid and 2-chloro-thiophene-4-carboxylic acid.
EXAMPLE
25-Cyclobutyl-22,23-dihydro-avermectin Bl
The product of Example 11 in benzene is hydrogenated in the presence of tris(triphenylphosphine)rhodium (I) chloride according to the procedure of EP-A-0001689 to yield the corresponding compound of formula (I) wherein R is H and the double bond is absent.
EXAMPLE 13-Deoxy~25-cyclopentyl-avermectin A2-aglycone
The product of Example 1 is treated with dilute sulphuric acid at room temperature and the resulting aglycone product is isolated and reacted with t-butyldimethylsilylchloride in dimethylformamide to provide the 23-O-t-butyldimethylsilyl aglycone derivative. This is dissolved in methylene chloride containing 4-dimethylaminopyridine and diisopropylethylamine, cooled in ice and treated dropwise with 4-nitrobenzenePLC 414/417 sulphony!chloride to yield the 13-chloro-13-deoxy product. This is finally dehalogenated by reaction with tributyltinhydride and deprotected with methanol containing a trace of para-toluene sulphonic acid following the procedures described in EP-A-0002615 1 4 to provide the compound of the formula I wherein R and R are 3 2 each H, R is OH, the double bond is absent and R is cyclopentyl.
EXAMPLE
Drench Formulation
The product of any one of the preceding Examples was dissolved In polyethylene glycol (average molecular weight 300) to give a solution containing 400 micrograms/ml for use as a drench formulation.
EXAMPLE
Anthelmintic
Anthelmintic activity was evaluated against Caenorhabdltis elegans using the in vitro screening test described by K. G. Simpkin and G. L. Coles in Parlsitology, 1979, 79, 19. The products of Examples 1, 7 and 9-16 all killed 100% of the worms at a well concentration of 0.1 micrograms per ml.
EXAMPLE
Insecticidal Activity
Activity against adult house fly Musca domestica is demonstrated using a standard test procedure in which the flies are anaesthetised under carbon dioxide and 0.1 microlitres of acetone containing the test compound is deposited on the thorax of female flies. The product of Examples 1, 7 and 9-16 all killed 100% of the treated flies at a dose of 0.01 micrograms per fly.
Contents35
4 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4
72 members in 43 offices
Priority claims16
| Document | Office | Kind | Date |
|---|---|---|---|
| 8518999 | United Kingdom | A | |
| 8518999 | United Kingdom | A | |
| 8520069 | United Kingdom | A | |
| 8520069 | United Kingdom | A | |
| 8610063 | United Kingdom | A | |
| 8610063 | United Kingdom | A | |
| 8610862 | United Kingdom | A | |
| 8610862 | United Kingdom | A | |
| 8518999 | – | – | – |
| 8520069 | – | – | – |
| 8610063 | – | – | – |
| 8610862 | – | – | – |
| GB19850018999 | – | – | – |
| GB19850020069 | – | – | – |
| GB19860010063 | – | – | – |
| GB19860010862 | – | – | – |
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| NO863014L | Norway | L | |
| JPS6229590A | Japan | A | |
| CN86105218A | China | A | |
| KR870001234A | Republic of Korea | A | |
| EP0214731A2 | European Patent Office (EPO) | A2 | |
| MA20746A1 | Morocco | A1 | |
| AU6056986A | Australia | A | |
| EP0214731A3 | European Patent Office (EPO) | A3 | |
| PL260806A1 | Poland | A1 | |
| ES8800986A1 | Spain | A1 | |
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| SU1560059A3 | Soviet Union (until 1991) | A3 | |
| YU44294B | Yugoslavia, later Serbia and Montenegro (until 2006) | B | |
| EG17814A | Egypt | A | |
| EP0214731B1 | European Patent Office (EPO) | B1 | |
| NO165881B | Norway | B | |
| AT59652T | Austria | T | |
| ATE59652T1 | Austria | T1 | |
| DE3676396D1 | Germany | D1 | |
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3 legal events, as the office reported them to INPADOC
Over the term
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| Patent expiredExpiredEXP | EXP | |
| Patent renewedKB | KB | |
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Numbers
- Publication, DOCDB
- 79523
- Publication, EPODOC
- IL79523
- Application
- 79523
- Application, DOCDB
- 7952386
- Application, EPODOC
- IL19860079523
Titles
- English
- AVERMECTIN-ANALOGOUS ANTIPARASITIC AGENTS,THEIR PREPARATION AND COMPOSITIONS CONTAINING THEM
Classification
- CPC, 10
- C07H19/01
- A01N43/90
- C12P17/181
- C12P19/62
- Y10S435/886
- A23K20/195
- A61P33/00
- A61P33/10
- C12R2001/465
- C12N1/205
- IPC, 15
- C07D493 22
- A01N43 90
- A23K20 195
- A61K31 365
- A61K31 70
- A61K31 7042
- A61K31 7048
- A61P33 00
- A61P33 10
- C07H17 08
- C07H19 01
- C12P17 08
- C12P17 18
- C12P19 62
- C12R1 465
