Synthetic peptides, their preparation, pharmaceutical formulations containing them and intermediates for their preparation.
Abstract
The tetradecapeptides of the formula wherein X is H-Ala-D-Ala, H-D-Ala-Gly, or H-D-Val-Gly; and X1 is Ala-Leu, Ala-Phe, Ala-D-Phe, D-Ala-Phe, or D-Ala-Cha; or the non-toxic, pharmaceutically acceptable acid addition salts thereof; inhibit secretion of growth hormone, while not materially inhibiting the secretion of insulin or glucagon. The compounds are prepared by oxidation of intermediates of the formula

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10 claims: 9 independent, 1 dependent
- 1A cyclic tetradecapeptide of the formula:wherein: X is H-Ala-D-Ala, H-D-Ala-Gly, or H-D-Val-Gly;and X 1 is Ala-Leu, Ala-Phe, Ala-D-Phe, D-Ala-Phe, or D-Ala-Cha;or a non-toxic, pharmaceutically acceptable acid addition salt thereof.
- 2Any one of the following compounds:
- 3A process for preparing a cyclic tetradecapeptide of the formula:wherein: X is H-Ala-D-Ala, H-D-Ala-Gly, or H-D-Val-Gly;and x 1 is Ala-Leu, Ala-Phe, Ala-D-Phe, D-Ala-Phe, or D-Ala-Cha;or a non-toxic, pharmaceutically acceptable acid addition salt thereof, which comprises reacting a linear tetradecapeptide of the formula: wherein: X is H-Ala-D-Ala, H-D-Ala-Gly, or H-D-Val-Gly;and X 1 is Ala-Leu, A la-Phe, Ala-D-Phe, D-Ala-Phe, or D-Ala-Cha;or a non-toxic, pharmaceutically acceptable acid addition salt thereof wherein the various terms are defined as above, with an oxidizing agent.
- 7A linear tetradecapeptide of the formula:wherein: X is H-Ala-D-Ala, H-D-Ala-Gly, or H-D-Val-Gly;and X 1 is Ala-Leu, Ala-Phe, Ala-D-Phe, D-Ala-Phe, or D-Ala-Cha;or a non-toxic, pharmaceutically acceptable acid addition salt thereof.
- 8Any one of the following compounds:
- 10A compound according to either of claims 1 . and 2 for use in inhibiting the secretion of growth hormone in a mammal.
Independent claims9
148 paragraphs in 3 sections, as filed
This invention relates to synthetic peptides and to intermediates employed in the synthesis thereof.
Somatostatin is the cyclic disulfide tetradecapeptide of the formula: <chemistry id="chem0001" num="0001"><img file="EP0011366A2_D0001.tif" /></chemistry>This peptide (I) has been identified as the "somato- tropin-release inhibiting factor" (SRIF) which is secreted by the hypothalamus and regulates the secretion of pituitary growth hormone (GH) (somato- tropin). [See Brazeau et al., Science, 179, 77 (1973), Burgus et al., Proc. Nat. Acad. Sci. (USA), 70, 684 (1973), and Ling et al.; Biochemical and Biophysical Res. Communications, 50, 127 (1973)]. The reduced form of somatostatin is the linear tetradecapeptide of the formula: <chemistry id="chem0002" num="0002"><img file="EP0011366A2_D0002.tif" /></chemistry>
The reduced form (II) has been prepared by total synthesis, [see Rivier et al., C. R. Acad. Sci. p. Sci. Natur. (Paris), 276, 2737 (1973) and Sarantakis and McKinley, Biochem. and Biophys. Res. Communications, 54, 234 (1973)] and form (II) can be converted to somatostatin (I) by oxidation whereby a bridging bond is formed between the two sulfhydryls of the two cysteinyl amino acid residues in the tetradecapeptide.
Somatostatin inhibits the release of numerous hormones in addition to growth hormone, including those from the pituitary (prolactin), the gut (gastrin, cholecystokinin, and secretin), and the pancreas (insulin and glucagon).
Various polypeptides which may be regarded as structural modifications of somatostatin have been prepared synthetically and are reported in the chemical literature. Such polypeptides have certain structural features in common with somatostatin and differ from somatostatin in that specific amino acid residues or functional groups originally present in the somatostatin molecule are either missing or are replaced by other amino acid residues or functional groups.
The present invention relates to novel synthetic biologically active polypeptides which may be regarded as structural modifications of somatostatin. The polypeptides of the invention differ from somatostatin in the following respects: <ul id="ul0001" list-style="none"><li>(a) The <sub>Al</sub>a<sup>l-</sup>Gly<sup>2</sup> segment is replaced by Ala-D-Ala, D-Ala-Gly, or D-Val-Gly;</li><li>(b) The Asn<sup>5-</sup>Phe<sup>6</sup> segment is replaced by Ala-Leu, Ala-Phe, Ala-D-Phe, D-Ala-Phe, or D-Ala-Cha;</li><li>(c) The Trp residue is replaced by D-Trp; and</li><li>(<sub>d</sub>) The Phe<sup>11</sup> residue is replaced by D-Phe.</li></ul>
All optically active amino acids and amino acid residues in the polypeptides depicted and described herein are in the natural or L-configuration, unless otherwise noted. The symbols identifying the amino acids and the amino acid residues in the polypeptides described herein are those adopted by the IUPAC-IVB Committee on Biochemical Nomenclature Recommendation (1971), and are described in the Archives of Biochemistry and Biophysics, 150, 1-8 (1972). The symbol "Cha" means the cyclohexylalanine moiety.
The present invention comprises tetradecapeptides of the formula: <chemistry id="chem0003" num="0003"><img file="EP0011366A2_D0003.tif" /></chemistry>wherein: <ul id="ul0002" list-style="none"><li>X is H-Ala-D-Ala, H-D-Ala-Gly, or H-D-Val-Gly; and</li><li>X is <sub>A</sub>la-Leu, Ala-Phe, Ala-D-Phe, D-Ala-Phe, or D-Ala-Cha; or a non-toxic, pharmaceutically acceptable acid addition salt thereof.</li></ul>
The compounds of Formula III are prepared by reacting the linear form (IV) <chemistry id="chem0004" num="0004"><img file="EP0011366A2_D0004.tif" /></chemistry>with an oxidizing agent.
The peptides of Formula III are biologically active and inhibit the secretion of growth hormone without materially inhibiting the secretion of insulin and glucagon, as demonstrated in vivo in laboratory animals using standard pharmacological test procedures. Because of this specificity, the peptides are especially useful in the treatment of diabetes and of other pathological conditions (e.g. acromegaly) characterized by the abnormally high secretion of growth hormone.
Preferred embodiments of the peptides defined by Formula III are those wherein: <ul id="ul0003" list-style="none"><li>(i) X is H-D-Val-Gly and X<sup>1</sup> is Ala-Leu (i.e., D-Val<sup>1</sup>, Ala<sup>5</sup> , Leu<sup>6</sup>, D-Trp<sup>8</sup>, D-Phe<sup>11</sup>- somatostatin)</li><li>(ii) X is H-D-Val-Gly and X<sup>1</sup> is Ala-Phe (i.e. D-Val<sup>1</sup>. Ala<sup>5</sup> , <sub>D</sub>-<sub>Tr</sub>p<sup>8</sup>, D-Phe<sup>11</sup>-somatostatin)</li><li>(iii) X is H-D-Val-Gly and X<sup>1</sup> is Ala-D-Phe (i.e. D-Val<sup>1</sup>; Ala<sup>5</sup>, D-Phe<sup>6</sup>, D-Trp<sup>8</sup>, D-Phe<sup>11</sup>- somatostatin).</li><li>(iv) X is H-D-Ala-Gly and X<sup>1</sup> is Ala-Phe (i.e. D-Ala<sup>1</sup>. Ala<sup>5</sup> , D-Trp<sup>8</sup> D-Phe 11-somatostatin)</li><li>(v) X is Ala-D-Ala and X<sup>1</sup> is Ala-Phe (i.e. D-Ala<sup>2</sup>, Ala<sup>5</sup>, <sub>D</sub>-<sub>Tr</sub>p , D-Phe<sup>11</sup>- somatostatin)</li></ul>
The present invention also contemplates the intermediate linear form (IV) of the tetradecapeptides of Formula III: <chemistry id="chem0005" num="0005"><img file="EP0011366A2_D0005.tif" /></chemistry>or a non-toxic acid addition salt thereof; wherein X and X<sup>1</sup> have the meanings hereinbefore defined with respect to Formula III. The linear peptides defined by Formula IV are precursors in the preparation of the peptides of Formula III. In the cyclic form (III), the two cysteine residues (Cys<sup>3 </sup>and Cys<sup>l4</sup>) are linked by means of a disulfide bond formed between the side chain sulfhydryl functions.
Also the invention contemplates the protected peptides of Formula V: <chemistry id="chem0006" num="0006"><img file="EP0011366A2_D0006.tif" /></chemistry>wherein: <ul id="ul0004" list-style="none"><li>Y is R-Ala-D-Ala, R-D-Ala-Gly, or R-D-Val-Gly wherein R is H or an a-amino protecting group;</li><li>Y<sup>1</sup> is Ala-Leu, Ala-Phe, Ala-D-Phe, D-Ala-Phe, or D-Ala-Cha;</li><li><sub>R</sub><sup>1</sup> is a sulfhydryl protecting group;</li><li>R<sup>2</sup> is an ε-amino protecting group;</li><li><sub>R</sub><sup>3</sup> is hydrogen or formyl;</li><li><sub>R</sub><sup>4</sup> is a hydroxyl protecting group; and</li><li>Z is -OH, -OCH<sub>3</sub>, or -O-CH<sub>2</sub>-[polystyrene resin];</li></ul>and, when R or R<sup>3</sup> is H, the non-toxic acid addition salts thereof.
The peptides of Formula V are intermediates in the synthesis of the peptides of Formula III and IV.
In the synthesis of the peptides of Formula III, the peptide chain is built stepwise by the sequential coupling of individual amino acids commencing from the C-terminal end of the chain. During each coupling, the amino acids must be protected at the a-amino group and, if necessary, at reactive side-chain functional groups to prevent the formation of undesirable side products. In the peptides of Formula V, the protecting groups represented by <sub>R</sub>, R<sup>1</sup>, R<sup>2</sup>, and R<sup>4 </sup>were employed to block reactive a-amino or side-chain groups in the individual amino acids during their incorporation into the peptide chain. The protecting groups represented by R, R<sup>1</sup>, R<sup>2</sup>, and R can, therefore, be any group known in the art to be useful for the stepwise synthesis of polypeptides. Such groups are well-known, and the selection of a particular protecting group and its method of use will be readily apparent to a peptide chemist of ordinary skill. Illustrative examples of protecting groups for R, R , R and R are set forth below: <ul id="ul0005" list-style="none"><li>A. For an a-amino group present in the N-terminal amino acid residue, R may be: (a) acyl-type groups, such as formyl, trifluoracetyl, phthalyl, p-toluene sulfonyl (tosyl), benzenesulfonyl, nitrophenylsulfenyl, and others; (b) aromatic urethane-type groups, such as benzyloxycarbonyl and substituted benzyloxycarbonyl, for example: p-chlorobenzyloxycarbonyl, p-bromobenzyloxycarbonyl, p-nitrobenzyloxycarbonyl, and p-methoxybenzyloxycarbonyl, o-chlorobenzyloxycarbonyl, 2,4-dichlorobenzyloxycarbonyl, 2,6-dichlorobenzyloxycarbonyl, and others; (c) aliphatic urethane type groups such as t-butyloxycarbonyl, t-amyloxycarbonyl, isopropyloxycarbonyl, 2-(p-biphenyl) isopropyloxycarbonyl, allyloxycarbonyl, and others; (d) cycloalkyl urethane-type groups such as cyclopentyloxycarbonyl, cyclohexyloxycarbonyl, cycloheptyloxycarbonyl, adamantyloxycarbonyl, and others; (e) thio urethane-type groups such as phenylthiocarbonyl; (f) alkyl-type groups such as triphenylmethyl, or (g) trialkylsilane groups, such as trimethylsilane. The preferred a-amino protecting group defined by R is t-butyloxycarbonyl (BOC).</li><li>B. For the sulfhydryl group present in cysteine, R<sup>1</sup> may be benzyl and substituted benzyl (e.g. 3,4-dimethylbenzyl, p-methoxybenzyl, p-methylbenzyl, p-chlorobenzyl, p-nitrobenzyl), trityl, benzyloxycarbonyl, benzhydryl, <sup>p</sup>-methoxybenzyloxycarbonyl, benzylthiomethyl, ethylcarbamoyl, thioethyl, tetrahydropyranyl, acetamidomethyl, benzoyl, and others. The preferred sulfhydryl protecting group defined by R<sup>1</sup> is p-methoxybenzyl (MBzl).</li><li>C. For the e-amino protecting group present in lysine, R<sup>2 </sup>may be one of the groups mentioned hereinabove for the protection of an a-amino group. Typical groups include for example, benzyloxycarbonyl, p-chlorobenzyloxycarbonyl, p-bromobenzyloxycarbonyl, o-chlorobenzyloxycarbonyl, 2,6-dichlorobenzyloxycarbonyl, 2,4-dichlorobenzyloxycarbonyl, o-bromobenzyloxycarbonyl, p-nitrobenzyloxycarbonyl t-butyloxycarbonyl, isopropyloxycarbonyl, t-amyloxycarbonyl, cyclopentyloxycarbonyl, cyclohexyloxycarbonyl, cycloheptyloxycarbonyl, adamantyloxycarbonyl, p-toluenesulfonyl, and others. The preferred <sub>E</sub>-amino protecting group defined by R<sup>2</sup> is o-chlorobenzyloxycarbonyl (ClBzl).</li><li>D. For the hydroxyl group of serine or threonine, R may be C<sub>1</sub>-C<sub>4</sub> alkyl (e.<sup>g.</sup> methyl, ethyl, t-butyl), benzyl, substituted benzyl (e.g. p-methoxybenzyl, p-nitrobenzyl, p-chlorobenzyl, o-chlorobenzyl), C1-C3 alkanoyl (e.g. formyl, acetyl, propionyl), triphenylmethyl, or benzoyl. The preferred hydroxyl protecting group defined by R is benzyl (Bzl).</li></ul>
The group R represents either hydrogen or formyl substituted on the nitrogen of the indole ring of tryptophan. The use of formyl as a protecting group is optional. R<sup>3</sup> is preferably hydrogen.
In Formula V, when Z represents "-O-CH<sub>2</sub>-[polystyrene resin]" the peptide chain is attached to the polystyrene resin by means of an ester linkage, (-Cys-O-CH<sub>2</sub>-) formed between the carboxyl group of the C-terminal cysteine moiety and one of the methylene groups present on the resin matrix as sites for such attachment. The polystyrene resin is a styrene polymer which is cross linked by the addition of about 0.5 to about 3% divinylbenzene and which is chloromethylated or hydroxymethylated to provide sites for ester formation. An example of a hydroxymethylated resin is described by Bodanszky et al. Chem. Ind. (London) 38, 1597-98 (1966). A chloromethylated polystyrene resin is commercially available from Lab System, Inc., San Mateo, California. The resin is also described by Stewart et al Solid Phase Peptide Synthesis, Freeman and Co., San Francisco, California, pp. 1-6.
The tetradecapeptides of this invention can be made either by classical (solution) methods or by the solid phase method using techniques generally known in the art for forming peptide bonds. The peptide can be assembled either by coupling each amino acid separately or by coupling appropriate pre-formed peptide segments in the desired order.
The preferred method of preparation of the peptides of Formula III, and of the intermediates of Formula IV and V is by the solid phase technique in which the amino acid sequence is built sequentially from an initial, insoluble resin-supported C-terminal amino acid. Techniques for the solid phase method are described by J. Stewart et al. Solid Phase Peptide Synthesis, Freeman and Co., San Francisco, 1969.
In general, in the solid phase method, the amino acid corresponding to the C-terminal amino acid residue of the desired peptide is anchored to an insoluble resin support, and the peptide chain is then formed beginning at the resin- supported C-terminal amino acid by introducing the individual amino acids one at a time until the desired amino acid sequence is achieved. Alternatively, small peptide fragements can be prepared and introduced into the peptide chain in the desired order. The peptide chain remains attached to the resin throughout the synthesis, and, upon completion of the chain, the peptide is cleaved from the resin.
The amino acids are coupled using techniques well-known in the art for the formation of a peptide bond. One method is to convert the amino acid to a derivative that will render the carboxyl group more reactive to reaction with the free N-terminal amino group of the peptide fragment. For example, the amino acid can be converted to a mixed anhydride by reaction of a protected amino acid with ethyl chloroformate, phenyl chloroformate, sec-butyl chloroformate, isobutylchloroformate, pivaloyl chloride, or like acid chloride. Alternatively, the amino acid can be converted to an active ester such as a 2,4,5-trichlorophenyl ester, a pentachlorophenyl ester, a nitrophenyl ester, an ester formed from N-hydroxysuccinimide, or an ester formed from 1-hydroxybenzotriazole.
Another method is to perform the coupling reaction with a suitable coupling agent, such as N,N'-dicyclohexylcarbodimide (DCC) or N,N<sup>I-</sup>diisopropylcarbodiimide (DIC). Other appropriate coupling agents will be apparent to those skilled in the art. [See Schroder and Lubke, The Peptides, Academic Press, 1965, Chapter III.]
It should be recognized that the a-amino group of each amino acid employed in the peptide synthesis must be protected during the coupling reaction to prevent side reactions involving the reactive a-amino function. It should also be recognized that certain amino acids contain reactive side-chain functional groups (e.g. sulfhydryl, e-amino, and hydroxyl), and such functional groups must also be protected both during the initial coupling of the amino acid containing the side-chain group and during the coupling of subsequent amino acids. Suitable protecting groups are known in the art [See for example, Protective Groups In Organic Chemistry, M. McOmie, Editor, Plenum Press, N.Y., 1973.]
In selecting a particular protecting group the following conditions must be observed: An a-amino protecting group must: (1) be stable and render the a-amino function inert under the conditions employed in the coupling reaction, and (2) must be readily removable after the coupling reaction under conditions that will not remove the side chain protecting groups or alter the structure of the peptide fragment. A side chain protecting group must: (1) be stable and render the side chain functional group inert under the conditions employed in the coupling reaction, (2) be stable under the conditions employed in removing the a-amino protecting group, and (3) be readily removable upon completion of the desired amino acid sequence under reaction conditions that will not alter the structure of the peptide chain.
It will be apparent to those skilled in the art that the protecting groups known in the art to be useful for peptide synthesis will vary in their reactivity towards the acidic agents employed for their removal. For example, certain protecting groups, such as triphenylmethyl and 2-(p-biphenyl)-isopropyloxycarbonyl are very labile and can be cleaved under mild acid conditions. Other protecting groups, such as t-butyloxycarbonyl, t-amyloxycarbonyl, adamantyloxycarbonyl, and p-methoxybenzyloxycarbonyl are less labile and require moderately stong acids (such as trifluoroacetic, hydrochloric, or borontrifluoride in acetic acid) for their removal. Still other protecting groups, such as benzyloxycarbonyl, halobenzyloxycarbonyl, <sub>E</sub>-nitrobenzyloxycarbonyl, cycloalkoxycarbonyl, and isopropyloxycarbonyl, are even less labile and require strong acids, such as hydrogen fluoride, hydrogen bromide, boron trifluoroacetate in trifluoroacetic acid for their removal.
Upon completion of the desired peptide sequence, the protected peptide must be cleaved from the resin support, and all protecting groups must be removed. The cleavage reaction and removal of the protecting groups may be accomplished simultaneously or stepwise. When the resin support is a chloromethylated polystyrene resin, the bond anchoring the peptide to the resin is an ester linkage formed between the free carboxyl group of the C-terminal cysteine moiety and one of the many chloromethyl groups present on the resin matrix. It will be recognized that the anchoring bond can be cleaved by reagents which are known to be capable of breaking an ester linkage and of penetrating the resin matrix. One especially convenient method is by treatment with liquid hydrogen fluoride. This reagent will not only cleave the peptide from the resin but will also remove all protecting groups. Hence, use of this reagent will directly afford the fully deprotected linear form of the peptide. When it is desired to cleave the peptide without removing protecting groups, the protected peptide-resin can undergo methanolysis to give the protected linear peptide in which the C-terminal carboxyl group is methylated. The methyl ester can then be hydrolyzed under mild, alkaline conditions to give the free C-terminal carboxyl. The protecting groups on the peptide chain can then be removed by treatment with a strong acid, such as liquid hydrogen fluoride. A particularly useful technique for methanolysis is that of G. Moore et al., Peptides, Proc. 5th Amer. Pept. Symp., M. Goodman and J. Meinhofer, Eds., John Wiley, N.Y., 1977, pp. 518-521 in which the protected peptide-resin is treated with methanol and potassium cyanide in the presence of crown ether.
Another method for cleaving the protected peptide from the resin is by ammonolysis or by treatment with hydrazine. The resulting C-terminal amide or hydrazide can be hydrolyzed to the free C-terminal carboxyl, and the protecting groups can be removed conventionally.
It will also be recognized that the protecting group present on the N-terminal a-amino group may be removed preferentially either before or after the protected peptide is cleaved from the resin support.
Upon cleavage from the resin and the removal of all protecting groups, the product obtained is in the form of the linear tetradecapeptide. The linear tetradecapeptide can be cyclized to the final cyclic tetradecapeptide (III) by means of an oxidizing agent capable of converting the two sulfhydyl groups of Cys and Cys <sup>14</sup> to the disulfide bond. Both exposure to air or treatment with potassium ferricyanide may be used to effect such oxidation. When air is employed, the pH of the medium should be about 2.5 to about 9.0 and preferably about 7.0 to 7.6 and the concentration of the peptide should not be above 0.4 mg/ml. A concentration of about 50 µg/ml is preferred.
For pharmacological purposes, the peptides of this invention can be administered in the form of an acid addition salt prepared by reaction with an appropriate organic or inorganic acid which is non-toxic and acceptable for pharmaceutical purposes. Suitable acids are well known in the art. Illustrative of such acids are hydrochloric, hydrobromic, sulfuric, sulfonic, tartaric, fumaric, glycolic, succinic, malonic, citric, maleic, acetic, phosphoric, benzoic, ascorbic, nitric, p-toluenesulfonic, benzenesulfonic, naphthalenesulfonic, propionic, and the like. Acetic acid is preferred.
The preferred method for the solid phase synthesis of the peptides of Formula III and the intermediates thereto, is illustrated by the Examples. In this method, a-amino and sulfhydyl protected cysteine (Boc-Cys(MBzl)-OH) is first attached to chloromethylated polystyrene resin according to the method of B. Gisin, Helv. Chim. Acta. 56, 1476 (1173) wherein the cesium salt of the protected cysteine is reacted with the chloromethylated polystyrene resin in dimethylformamide. The t-butyloxycarbonyl protecting group is then removed by treatment with trifluoroacetic acid in chloroform-methylene chloride. Individual protected amino acids are then coupled sequentially beginning at the resin-supported C-terminal cysteine until the desired tetradecapeptide is achieved. Throughout the synthesis, N,N'-dicyclohexylcarbodiimide is used as the coupling agent, and t-butyloxycarbonyl (Boc) is used as the a-amino protecting group. The side chain protecting groups are: p-methoxybenzyl (MBzl) for the sulfhydyl group of cysteine; o-chlorobenzyloxycarbonyl (Clz) for the e-amino of lysine; and benzyl (Bzl) for the hydroxyl of serine and threonine. Trifluoroacetic acid in methylenechloride is employed to remove preferentially the t-butyloxycarbonyl protecting group. After each deprotection, the side-chain protected peptide is neutralized with triethylamine.
Upon completion of the desired amino acid sequence, the resulting tetradecapeptide is deprotected and removed from the polystyrene resin by treatment with liquid hydrogen fluoride in the presence of anisole and ethylmercaptan. The resulting linear tetradecapeptide (IV) is readily converted to the cyclic tetradecapeptide (V) by exposure of a solution of the linear tetradecapeptide (IV) to atmospheric oxygen. The cyclic tetradecapeptide is purified by chomotography using a Sephadex G-25 Fine Column.
For pharmacological use, the tetradecapeptides of Formula III may be administered alone or in combination with pharmaceutically acceptable carriers or excipients. Suitable pharmaceutical carriers will be apparent to those skilled in the art. Administration may be orally or parenterally by methods conventional in the art of medicine.
The following abbreviations have been used in this application: <tables id="tabl0001" num="0001"><img file="EP0011366A2_D0007.tif" /></tables><tables id="tabl0002" num="0002"><img file="EP0011366A2_D0008.tif" /></tables>
The method of making and using the peptides of the invention are illustrated in the following Examples.
Example 1
N-t-Butyloxycarbonyl-L-(S-p-methoxybenzyl)cysteine
hydroxymethyl-polystyrene resin ester
Chloromethylated polystryene resin is esterified by the method of F. GisinHelv. Chim. Acta. 56, 1976 (1973).
A solution of the cesium salt of t-butyloxycarbonyl-L-(S-p-methoxybenzyl)cysteine (51.26 mmoles) in dimethylformamide (DMF) (1000 ml.) is stirred with chloromethylated polystyrene resin (Lab Systems, Inc.) (100 g.; 0.75 mmole Cl/g.) at room temperature for five days. The resin is separated by filtration and washed with 85% DMF - 15% water and then with DMF alone. This wash sequence is repeated two additional times. After two more washings with DMF, the resin is suspended in DMF (1000 ml.), and the suspension is stirred with cesium acetate (16 g.; 83.4 mmole) at room temperature for nine days. The resin is separated by filtration and washed with 85% DMF - 15% water and with DMF alone. This sequence is repeated two additional times. The resin is finally washed with chloroform and is suspended in chloroform contained in a separatory funnel. Fines are removed by drawing off liquid. This separation is repeated three additional times. The resin is collected by filtration and washed successively with 95% ethanol, benzene, and 95% ethanol. The latter two washes are repeated two additional times. The resin is dried overnight in vacuo at 30°C. to give 115.3 g. of the title product. A portion of the resin is assayed for cysteine after hydrolysis using a 1:1 mixture of concentrated hydrochloric acid-dioxane in the presence of a small amount of dimethylsulfoxide. Found: 0.254 mmole cysteine per g. of resin.
Example 2
N-t-Butyloxycarbonyl-D-valyl-glycyl-L-(S-p-methoxybenzyl)cysteinyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl)-lysyl-L-alanyl-D-phenylalanyl-L-phenylalanyl-D-tryptophyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl)lysyl-L-(O-benzyl)threonyl-D-phenylalanyl-L-(O-benzyl)-threonyl-L-(O-benzyl)seryl-L-(S-p-methoxybenzyl)-cysteine hydroxymethyl-polystyrene resin ester
N-t-Butyloxycarbonyl-L-(S-p-methoxybenzyl) cysteine hydroxymethyl-polystyrene resin ester (5.0 g.), as prepared in Example 1, is placed in the reaction chamber of a Beckman 990 peptide synthesizer and is treated according to Schedule A (set forth below), N-t-butyloxycarbonyl-L-(O-benzyl)serine being employed as the amino acid added in Step 11 thereof. After the final methylene chloride wash (Step 18), the product is washed three times with dimethylformamide (DMF) and is re-coupled by following Step 11 of Schedule A. The product is then washed three times with DMF and is retreated by following Steps 12-18 of Schedule A.
In a similar manner, the following protected amino acids are incorporated sequentially into the peptide resin: <ul id="ul0006" list-style="none"><li>N-t-butyloxycarbonyl-L-(O-benzyl)threonine</li><li>N-t-butyloxycarbonyl-D-phenylalanine</li><li>N-t-butyloxycarbonyl-L-(O-benzyl) threonine</li><li>N-t-butyloxycarbonyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl) lysine</li><li>N-t-butyloxycarbonyl-D-tryptophane</li><li>N-t-butyloxycarbonyl-L-phenylalanine</li><li>N-t-butyloxycarbonyl-D-phenylalanine</li><li>N-t-butyloxycarbonyl-L-alanine<sup>*</sup></li><li>N-t-butyloxycarbonyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl)lysine</li><li>N-t-butyloxycarbonyl-L-(S-p-methoxybenzyl)cysteine</li><li>N-t-butyloxycarbonyl-glycine</li><li>N-t-butyloxycarbonyl-D-valine</li></ul>
<sup>* </sup>Steps 10-18 of Schedule A are not repeated during the incorporation of BOC-Ala.
After incorporation of the N-terminal amino acid residue (D-valine), the peptide resin is dried in vacuo. An amino acid analysis (obtained by refluxing a portion of the peptide for 72 hours in concentrated hydrochloric acid-dioxane, 1:1) gives the following results, lysine being employed as the standard: <ul id="ul0007" list-style="none"><li>2Thr, 2.20; Ser, 1.17; Gly, 0.99; Ala, 1.13; Val, 1.06; 3Phe, 3.18; 2Lys, 2.00.</li></ul>
SCHEDULE A [Protocol for the removal of the t-butyloxycarbonyl a-amino protecting group and the coupling of the amino acid-to the peptide-resin]
<ul id="ul0008" list-style="none"><li>1. Wash with CHCl<sub>3</sub>, three times.</li><li>2. To remove the t-butyloxycarbonyl α-amino protecting group, treat with a mixture of trifluoroacetic acid (28.8%), CH<sub>2</sub>Cl<sub>2</sub> (17.5%), and triethylsilane (5.8%) for twenty minutes. Repeat one time.</li><li>3. Wash with CHC1<sub>3</sub> two times.</li><li>4. Wash with CH<sub>2</sub>Cl<sub>2</sub>, one time.</li><li>5. Wash with 90% t-BuOH:10% t-AmOH, three times.</li><li>6. Wash with CH<sub>2</sub>Cl<sub>2</sub>, three times.</li><li>7. For neutralization, treat with 3% triethylamine in CH<sub>2</sub>Cl<sub>2</sub>, three times.</li><li>8. Wash with CH<sub>2</sub>Cl<sub>2</sub>, three times.</li><li>9. Wash with 90% t-BuOH:10% t-AmOH, three times.</li><li>10. Wash with CH<sub>2</sub>Cl<sub>2</sub>, three times.</li><li>11. To couple the amino acid, treat with the protected amino acid (1.0 mmole/g. resin) and N,N'- dicyclohexylcarbodiimide (1.0 mmole/g. resin) in CH<sub>2</sub>C1<sub>2</sub>. Allow two-hour reaction time.</li><li>12. Wash with CH<sub>2</sub>Cl<sub>2</sub>, three times.</li><li>13. Wash with 90% t-BuOH:10% t-AmOH.</li><li>14. Wash with CH<sub>2</sub>Cl<sub>2</sub>, three times.</li><li>15. For neutralization, treat with 3% triethylamine in CH<sub>2</sub>Cl<sub>2</sub>, three times.</li><li>16. Wash with CH<sub>2</sub>Cl<sub>2</sub>, three times.</li><li>17. Wash with 90% t-BuOH:10% t-AmOH, three times.</li><li>18. Wash with CH<sub>2</sub>Cl<sub>2</sub>, three times.</li></ul>
The volume of solvent employed for each step is eight ml./g. of resin. Unless otherwise noted, the contact time for each step is three minutes.
Example 3
D-Valyl-glycyl-L-cysteinyl-L-lysyl-L-alanyl-D-phenylalanyl-L-phenylalanyl-D-tryptophyl-L-lysyl-L-threonyl-D-phenylalanyl-L-threonyl-L-seryl-L-cysteine.
The protected peptido-resin prepared in Example 2 (3.505 g., at a substitution level of 0.157 mmole/g. resin) is mixed with anisole (6.4 ml.) and ethyl mercaptan (6.4 ml). The mixture is cooled with liquid nitrogen and liquid hydrogen fluoride (72 ml.) is added by distillation. The mixture is then brought to 0°C. and is stirred for two hours. Removal of hydrogen fluoride by distillation gives a residue to which is added ether at 0°C. The solid is collected, washed with ether, and dried. The peptide is separated from the resin by extracting the solid with 1M acetic acid and 50% acetic acid. The extract is lyophilized in the dark to dryness. A mixture of 0.2 M acetic acid (10 ml) and glacial acetic acid (4 ml) is added to the dry material, and the suspension is warmed to effect solution. Upon cooling, a small amount of precipitate separates. This is removed by filtration. The filtrate is chromatographed through a Sephadex G-25 Fine column under the following conditions--solvent: degassed 0.2M acetic acid; column size: 7.5 X 150 cm; temperature: 26°C; flow rate: 1626 ml/hour; fraction volume: 24.4 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows a broad peak with a back-side shoulder. UV spectrographic analysis indicates that the fractions represented by the broad peak contain the desired product. Hence, fractions 214-235 (5196-5706 ml, peak 5475 ml) are combined. UV spectrographic analysis of a sample of the combined fractions indicates that 342 mg. of the product is obtained. Recovery: 38.3% Free sulfhydryl content: 89.8% of theoretical (by Ellman titration)
Example 4
D-Valyl-glycyl-L-cysteinyl-L-lysyl-L-alanyl-D-phenylalanyl-L-phenylalanyl-D-tryptophyl-L-lysyl-L-threonyl-D-phenylalanyl-L-threonyl-L-seryl-L-cysteine cyclic (3 → 14) disulfide.
The linear peptide prepared in Example 3 is air oxidized to the corresponding cyclic peptide by the following procedure:
The combined fractions obtained in Example 3 (510 ml, theoretically containing 342 mg. of peptide) are diluted with 6330 ml of distilled water to achieve a final solution having a concentration of 50 pg/ml. Sufficient concentrated ammonium hydroxide is added to bring the pH to 6.7. The solution is then stirred at room temperature in the dark for 41 hours at which time Ellman titration of an aliquot indicates complete oxidation.
The solution is concentrated in vacuo to a volume of about 30 ml. Glacial acetic acid (30 ml) is added and the solution is desalted by chomatography on a Sephadex G-25 Fine Column under the following conditions -- solvent: degassed 50% acetic acid; column size: 5.0 X 210 cm; temperature: 26°C; flow rate: 113 ml/hour; fraction volume: 19.8 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows two large peaks. The first represents the aggregated forms of the peptide, while the second represents monomeric material. Fractions 106-114 (2080-2257 ml.) are combined and lyophilized to dryness in the dark. The resulting solid is dissolved in degassed 0.2M acetic acid (20 ml.) and the solution is chromatographed on a Sephadex G-25 Fine column under the following conditions -solvent: degassed 0.2M acetic acid; column size: 5.0 X 150 cm; temperature: 26°C; flow rate: 450 ml/hour; fraction volume: 15.75 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows a single peak. UV spectrographic analysis indicates that the fractions represented by the main part of this peak comprise the desired product. Fractions 171-181 (2678-2855 ml; peak, 2750 ml) are combined and lyophilized in the dark to give the title peptide. UV spectrographic analysis of the combined fractions before lyophilization indicated that 92 mg. of the product is obtained. Recovery, 26.9 % (from the linear form). Amino acid analysis: <ul id="ul0009" list-style="none"><li>D-Val, 1.0; Gly, 1.07; Cys, 2.08; Lys, 2.0; Ala, 1.02;</li><li>D- and L-Phe, 2.85; D-Trp, 1.68; Thr, 0.91; Ser, 0.87.</li></ul>
The above results are expressed as ratios to Lys/2. All values are the average of 2 hydrolyses, with no added scavengers. The value for D-Trp was determined by UV spectrographic analysis based on the concentration of the solution submitted for analysis.
Example 5
N-t-Butyloxycarbonyl-D-valyl-glycyl-L-(S-p-methoxybenzyl)cysteinyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl)lysyl-L-alanyl-L-phenylalanyl-L-phenylalanyl-D-tryptophyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl)lysyl-L-(O-benzyl)-threonyl-D-phenylalanyl-L-(0-benzyl)threonyl-L-(0-benzyl)seryl-L-(S-p-methoxybenzyl)cysteine hydroxymethyl-polystyrene resin ester
N-t-Butyloxycarbonyl-L-(S-p-methoxybenzyl) cysteine hydroxymethyl-polystyrene resin ester (5.0 g.), as prepared in Example 1, is placed in the reaction chamber of a Beckman 990 peptide synthesizer and is treated according to Schedule A as set forth in Example 2, N-t-butyloxycarbonyl-L-(0-benzyl)serine being employed as the amino acid added in Step 11 thereof. After the final methylene chloride wash (Step 18), the product is washed three times with dimethylformamide (DMF) and is re-coupled by following Step 11 of Schedule A. The product is then washed three times with DMF and is re-treated by following Steps 12-18 of Schedule A.
In a similar manner, the following protected amino acids are incorporated sequentially into the peptide resin: <ul id="ul0010" list-style="none"><li>N-t-butyloxycarbonyl-L-(O-benzyl)threonine</li><li>N-t-butyloxycarbonyl-D-phenylalanine</li><li>N-t-butyloxycarbonyl-L-(O-benzyl)threonine</li><li>N-t-butyloxycarbonyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl) lysine</li><li>N-t-butyloxycarbonyl-D-tryptophane</li><li>N-t-butyloxycarbonyl-L-phenylalanine</li><li>N-t-butyloxycarbonyl-L-phenylalanine</li><li>N-t-butyloxycarbonyl-L-alanine*</li><li>N-t-butyloxycarbonyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl) lysine</li><li>N-t-butyloxycarbonyl-L-(S-p-methoxybenzyl)cysteine</li><li>N-t-butyloxycarbonyl-glycine</li><li>N-t-butyloxycarbonyl-D-valine</li><li><sup>*</sup>Steps 11-18 of Schedule A are not repeated during the incorporation of BOC-Ala.</li></ul>
After incorporation of the N-terminal amino acid residue (D-valine), the peptide resin is dried in vacuo. An amino acid analysis (obtained by refluxing a portion of the peptide for 72 hours in concentrated hydrochloric acid-dioxane, 1:1) gives the following results, lysine being employed as the standard: <ul id="ul0011" list-style="none"><li>2Thr, 2.12; Ser, 1.09; Gly, 0.95; Ala, 1.13; Val, 0.98; 3Phe, 3.09; 2Lys, 2.00.</li></ul>
Example 6
D-Valyl-glycyl-L-cysteinyl-L-lysyl-L-alanyl-L-phenylalanyl-L-phenylalanyl-D-tryptophyl-L-lysyl-L-threonyl-D-phenylalanyl-L-threonyl-L-seryl-L-cysteine.
The protected peptide-resin prepared in Example 5 (3.516 g., at a substitution level of 0.151 mmole/g. resin) is mixed with anisole (6.4 ml.) and ethyl mercaptan (6.4 ml). The mixture is cooled with liquid nitrogen and liquid hydrogen fluoride (74 ml.) is added by distillation. The mixture is then brought to 0°C. and is stirred for two hours. Removal of hydrogen fluoride by distillation gives a residue to which is added ether at 0°C. The solid is collected, washed with ether, and dried. The peptide is separated from the resin by extracting the solid with 1M acetic acid and 50% acetic acid. The extract is lyophilized in the dark to dryness. A mixture of 0.2M acetic acid (10 ml) and glacial acetic acid (4 ml) is added to the dry material, and the suspension is warmed to effect solution. Insoluble materials are removed by filtration using another 6 ml. portion of glacial acetic acid. The filtrate is chromatographed through a Sephadex G-25 Fine column under the following conditions--solvent: degassed 0.2M acetic acid; column size: 7.5 X 150 cm; temperature: 26°C; flow rate: 1566 ml/hour; fraction volume: 23.5 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows a broad peak with a back-side shoulder. UV spectrographic analysis indicates that the fractions represented by the broad peak contain the desired product. Hence, fractions 219-245 (5123-5773 ml, peak 5480 ml) are combined. UV spectrographic analysis of a sample of the combined fractions indicates that 457 mg. of the product is obtained. Recovery: 53.0%. Free sulfhydryl content: 92% of theoretical (by Ellman titration)
Example 7
D-Valyl-glycyl-L-cysteinyl-L-lysyl-L-alanyl-L-phenylalanyl-L-phenylalanyl-D-tr
y
ptophyl-L-lysyl-L-threonyl-D-phenylalanyl-L--threonyl-L-seryl-L-cysteine cyclic (3 → 14) disulfide.
The linear peptide prepared in Example 6 is air oxidized to the corresponding cyclic peptide by the following procedure:
The combined fractions obtained in Example 3 (650 ml, theoretically containing 457 mg. of peptide) are diluted with 8476 ml of distilled water to achieve a final solution having a concentration of 50 µg/ml. Sufficient concentrated ammonium hydroxide is added to bring the pH to 6.7. The solution is then stirred at room temperature in the dark for 24 hours at which time Ellman titration of an aliquot indicates complete oxidation.
The solution is concentrated in vacuo to a volume of about 50 ml. Glacial acetic acid (50 ml) is added and the solution is desalted by chromatography on a Sephadex G-25 Fine Column under the following conditions -- solvent: degassed 50% acetic acid; column size: 5.0 X 210 cm; temperature: 26°C; flow rate: 120 ml/hour; fraction volume: 21 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows two large peaks. The first represents the aggregated forms of the peptide, while the second represents monomeric material. Fractions 99-116 (2069-2446 ml.) are combined and lyophilized to dryness in the dark. The resulting solid is dissolved in degassed 0.2M acetic acid (20 ml.) and the solution is chromatographed on a Sephadex G-25 Fine Column under the following conditions -- solvent: degassed 0.2M acetic acid; column size: 5.0 x 150 cm.; temperature: 26°C; flow rate, 446 ml./hour; fraction volume: 15.6 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows a single peak. UV spectrographic analysis indicates that the fractions represented by the main part of this peak comprise the desired product. Fractions 167-179 (2590-2796 ml; peak, 2680 ml) are combined and lyophilized in the dark to give the title peptide. UV spectrographic analysis of the combined fractions before lyophilization indicated that 182 mg. of the product is obtained. Recovery, 39.8% (from the linear form).
Amino acid analysis: <ul id="ul0012" list-style="none"><li>D-Val, 1.0; Gly, 1.0; Cys, 1.52; Lys, 2.0; Ala, 1.03; D- and L-Phe, 2.94; D-Trp, 1.04; Thr, 1.98; Ser, 0.84;</li></ul>
The above results are expressed as ratios to Lys/2. All values are the average of 2 hydrolyses, with no added scavengers. The value for D-Trp was determined by UV spectrographic analysis based on the concentration of the solution submitted for analysis.
Example 8
N-t-Butyloxycarbonyl-D-valyl-glycyl-L-(S-p-methoxybenzyl)cysteinyl-L-(N
ε
-o-chlorobenzyloxycarbonyl)lysyl-L-alanyl-L-leucyl-L-phenylalanyl-D-tryptophyl-L-(N
ε
-o-chlorobenzyloxycarbonyl)lysyl-L-(0-benzyl)threonyl-D-phenylalanyl-L-(O-benzyl)threonyl-L-(O-benzyl)seryl-L-(S-p-methoxybenzyl)cysteine hydroxymethyl-polystyrene resin ester
N-t-Butyloxycarbonyl-L-(S-p-methoxybenzyl) cysteine hydroxymethyl-polystyrene resin ester (5.0 g.), as prepared in Example 1, is placed in the reaction chamber of a Beckman 990 peptide synthesizer and is treated according to Schedule A as set forth in Example 2, N-t-butyloxycarbonyl-L-(O-benzyl)serine being employed as the amino acid added in Step 11 thereof. After the final methylene chloride wash (Step 18), the product is washed three times with dimethylformamide (DMF) and is re-coupled by following Step 11 of Schedule A. The product is then washed three times with DMF and is re-treated by following Steps 12-18 of Schedule A.
In a similar manner, the following protected amino acids are incorporated sequentially into the peptide resin: <ul id="ul0013" list-style="none"><li>N-t-butyloxycarbonyl-L-(O-benzyl)threonine</li><li>N-t-butyloxycarbonyl-D-phenylalanine</li><li>N-t-butyloxycarbonyl-L-(O-benzyl)threonine</li><li>N-t-butyloxycarbonyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl)lysine</li><li>N-t-butyloxycarbonyl-D-tryptophane</li><li>N-t-butyloxycarbonyl-L-phenylalanine</li><li>N-t-butyloxycarbonyl-L-leucine</li><li>N-t-butyloxycarbonyl-L-alanine<sup>*</sup></li><li>N-t-butyloxycarbonyl-L-(N -o-chlorobenzyloxycarbonyl)lysine</li><li>N-t-butyloxycarbonyl-L-(S-p-methoxybenzyl)cysteine</li><li>N-t-butyloxycarbonyl-glycine</li><li>N-t-butyloxycarbonyl-D-valine</li><li><sup>*</sup>Steps 11-18 of Schedule A are not repeated during the incorporation of BOC-Ala.</li></ul>
After incorporation of the N-terminal amino acid residue (D-valine), the peptide resin is dried in vacuo. An amino acid analysis (obtained by refluxing a portion of the peptide for 72 hours in concentrated hydrochloric acid-dioxane, 1:1) gives the following results, lysine being employed as the standard: <ul id="ul0014" list-style="none"><li>2Thr, 1.88; Ser, 1.22; Gly, 1.06; Ala, 1.17; Val, 1.05; Leu, 1.17; 2Phe, 2.24; 2Lys, 2.00.</li></ul>
Example 9
D-Valyl
-
glycyl-L-cysteinyl-L-lysyl-L-alanyl-L-leuc
y
l-L-phenylalanyl-D-tryptophyl-L-lysyl-L-threonyl-D-phenalanyl-L-threonyl-L-seryl-L-cysteine.
The protected peptido-resin prepared in Example 8 (3.506 g., at a substitution level of 0.160 mmole/g. resin) is mixed with anisole (6.4 ml.) and ethyl mercaptan (6.4 ml.). The mixture is cooled with liquid nitrogen and liquid hydrogen fluoride (74 ml.) is added by distillation. The mixture is then brought to 0°C. and is stirred for two hours. Removal of hydrogen fluoride by distillation gives a residue to which is added ether at 0°C. The solid is collected, washed with ether, and dried. The peptide is separated from the resin by extracting the solid with 1M acetic acid and 50% acetic acid. The extract is lyophilized in the dark to dryness. A mixture of 0.2M acetic acid (10 ml.) and glacial acetic acid (4 ml.) is added to the dry material, and the suspension is warmed to effect solution. The filtrate is chromatographed through a Sephadex G-25 Fine column under the following conditions--solvent: degassed 0.2M acetic acid; column size: 7.5 X 150 cm; temperature: 26°C; flow rate: 1640 ml/hour; fraction volume: 24.6 ml.
A plot of absorbance at 280 mp of each fraction versus fraction number shows a large peak with a front-side shoulder and a following peak. UV spectrographic analysis indicates that the fractions represented by the large peak contain the desired product. Hence, fractions 214-233 (5240-5728 ml, peak 5500 ml) are combined. UV spectrographic analysis of a sample of the combined fractions indicates that 426 mg. of the product is obtained. Recovery: 47.8%. Free sulfhydryl content: 96.0% of theoretical (by Ellman titration)
Example 10
D
-Valyl-glycyl-L-cysteinyl-L-lysyl-L-alanyl-L-leucyl-
L
-phenylalanyl-D-tryptophyl-L-lysyl-L-threonyl-D-phenylalanyl-L-threonyl-L-seryl-L-cysteine cyclic (3 → 14) disulfide.
The linear peptide prepared in Example 9 is air oxidized to the corresponding cyclic peptide by the following procedure:
The combined fractions obtained in Example 9 (488 ml, theoretically containing 426 mg. of peptide) are diluted with 8032 ml of distilled water to achieve a final solution having a concentration of 50 pg/ml. Sufficient concentrated ammonium hydroxide is added to bring the pH to 6.7. The solution is then stirred at room temperature in the dark for 64 hours at which time Ellman titration of an aliquot indicates complete oxidation.
The solution is concentrated in vacuo to a volume of about 27 ml. Glacial acetic acid (28 ml) is added and the solution is desalted by chomatography on a Sephadex G-25 Fine Column under the following conditions -- solvent: degassed 50% acetic acid; column size: 5.0 X 210 cm; temperature: 26°C; flow rate: 116 ml/hour; fraction volume: 20.3 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows two large peaks. The first represents the aggregated forms of the peptide, while the second represents monomeric material. Fractions 105-115 (2109-2330 ml.) are combined and lyophilized to dryness in the dark. The resulting solid is dissolved in degassed 0.2M acetic acid (20 ml.) and the solution is chromatographed on a Sephadex G-25 Fine column under the following conditions -- solvent: degassed 0.2M acetic acid; column size: 5.0 x 150 cm; temperature: 26°C; flow rate: 458 ml/hour; fraction volume: 16.0 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows a single peak. UV spectrographic analysis indicates that the fractions represented by the main part of this peak comprise the desired product. Fractions 159-167 (2534-2678 ml; peak, 2622 ml) are combined and lyophilized in the dark to give the title peptide. UV spectrographic analysis of the combined fractions before lyophilization indicated that 135 mg. of the product is obtained. Recovery, 31.7% (from the linear form).
Amino acid analysis: <ul id="ul0015" list-style="none"><li>D-Val, 1.01; Gly, 1.0; Cys, 1.56; Lys, 2.0; Ala, 1.02; Leu, 1.02; D- and L-Phe, 2.0; D-Trp, 1.11; Thr, 1.94; Ser, 0.85.</li></ul>
The above results are expressed as ratios to Lys/2. All values are the average of 2 hydrolyses, with no added scavengers. The value for D-Trp was determined by UV spectrographic analysis based on the concentration of the solution submitted for analysis.
Example 11
N-t-3utyloxycarbonyl-L-(S-p-methoxybenzyl)cysteine hydroxymethyl-polystyrene resin ester
Chloromethylated polystryene resin is esterified by the method of F. Gisin, Helv. Chim. Acta. 56, 1976 (1973).
A solution of the cesium salt of t-butyloxycarbonyl-L-(S-p-methoxybenzyl)cysteine (26.5 mmoles) in dimethylformamide (DMF) (500 ml.) is stirred with chloromethylated polystyrene resin (Lab Systems, Inc.) (51 g.; 0.75 mmole Cl/g.) at room temperature for six days. The resin is separated by filtration and washed three times with 90% DMF:10% water, three times with 95% ethanol, and then three times with DMF alone. The resin is suspended in DMF (500 ml.), and the suspension is stirred with cesium acetate (10.5 g.) at room temperature for six days. The resin is separated by filtration and washed once with aqueous DMF. It is then washed three times each with 90% DMF:10% water, 95% ethanol, methylene chloride and chloroform. The resin is suspended in chloroform contained in a separatory funnel. Fines are removed by drawing off liquid. This separation is repeated three additional times. The resin is collected by filtration and is dried overnight in vacuo at 40°C. to give 44.8 g. of the title product. A portion of the resin is assayed for cysteine after hydrolysis using a 1:1 mixture of concentrated hydrochloric acid-dioxane in the presence of a small amount of dimethylsulfoxide. Found: 0.25 mmole cysteine per g. of resin.
Example 12
N-t-Butyloxycarbonyl-L-alanyl-D-alanyl-L-(S-p-methoxybenzyl)cysteinyl-L-(N
ε
-o-chlorobenzyloxycarbonyl)lysyl-L-alanyl-L-phenylalanyl-L-phenvlalanyl-D-(N-formyl)-tryptophyl-L-(N
ε
-o-chlorobenzyloxycarbonyl)lysyl-L-(O-benzyl)threonyl-D-phenylalanyl-L-(O-benzyl)threonyl-L-(O-benzyl) seryl-L-(S-p-methoxybenzyl)cysteine hydroxymethyl-polystyrene resin ester
N-t-Butyloxycarbonyl-L-(S-p-methoxybenzyl), cysteine hydroxymethyl-polystyrene resin ester (3.5 g.), as prepared in Example 11, is placed in the reaction chamber of a Beckman 990 peptide synthesizer and is treated according to Schedule A as set forth in Example 2, N-t-butyloxycarbonyl-L-(O-benzyl)serine being employed as the amino acid added in Step 11 thereof. After the final methylene chloride wash (Step 18), the product is washed three times with dimethylformamide (DMF) and is re-coupled by following Step 11 of Schedule A. The product is then washed three times with DMF and is re-treated by following Steps 12-18 of Schedule A.
In a similar manner, the following protected amino acids are incorporated sequentially into the peptide resin: <ul id="ul0016" list-style="none"><li>N-t-butyloxycarbonyl-L-(O-benzyl)threonine</li><li><sub>N</sub>-t-butyloxycarbonyl-D-phenylalanine</li><li>N-t-butyloxycarbonyl-L-(0-benzyl)threonine</li><li>N-t-butyloxycarbonyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl)lysine</li><li>N-t-butyloxycarbonyl-D-(N-formyl)-D-tryptophane</li><li>N-t-butyloxycarbonyl-L-phenylalanine</li><li>N-t-butyloxycarbonyl-L-phenylalanine</li><li>N-t-butyloxycarbonyl-L-alanine<sup>*</sup></li><li>N-t-butyloxycarbonyl-L-(N<sup>ε</sup>-o-chlorobenzyloxycarbonyl)lysine</li><li>N-t-butyloxycarbonyl-L-(S-p-methoxybenzyl)cysteine</li><li>N-t-butyloxycarbonyl-D-alanine</li><li>N-t-butyloxycarbonyl-L-alanine</li><li><sup>*</sup>Steps 11-18 of Schedule A are not repeated during the incorporation of BOC-Ala.</li></ul>
After incorporation of the N-terminal amino acid residue (L-alanine), the peptide resin is dried in vacuo. An amino acid analysis (obtained by refluxing a portion of the peptide for 72 hours in concentrated hydrochloric acid-dioxane, 1:1) gives the following results, lysine being employed as the standard: <ul id="ul0017" list-style="none"><li>2Thr, 2.64; Ser, 1.19; 3Ala, 3.96; 3Phe, 3.18; 2Lys, 2.00; Val, 1.06; Trp, 0.85.</li></ul>
Example 13
L
-Alanyl-D-alanyl-L-cysteinyl-L-lysyl-L-alanyl-L-phenylalanyl-L-phenylalanyl-D-try
p
tophyl-L-lysyl-L-threon
y
l-D-phenylalanyl-L-threonyl-L-seryl-L-cysteine.
The protected peptide-resin prepared in Example 12 (2.831 g., at a substitution level of 0.160 mmcle/g. resin) is mixed with anisole (5.0 ml.) and ethyl mercaptan (5.0 ml). The mixture is cooled with liquid nitrogen and liquid hydrogen fluoride (58 ml.) is added by distillation. The mixture is then brought to 0°C. and is stirred for 1.5 hours. Removal of hydrogen fluoride by distillation gives a residue to which is added ether at 0°C. The solid is collected, washed with ether, and dried. The peptide is separated from the resin by extracting the solid with 1M acetic acid and glacial acetic acid. The extract is lyophilized in the dark to dryness. A mixture of 0.2M acetic acid (10 ml) and glacial acetic acid (4 ml) is added to the dry material, and the suspension is warmed to effect solution. The material is not completely soluble. Insolubles are removed by filtration with 0.2M acetic acid (3 ml.) added. The filtrate is chromatographed through a Sephadex G-25 Fine column under the following conditions--solvent: degassed 0.2M acetic acid; column size: 7.5 X 150 cm; temperature: 26°C; flow rate: 673 ml/hour; fraction volume: 22.8 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows a broad peak with a back-side shoulder. UV spectrographic analysis indicates that the fractions represented by the broad peak contain the desired product. Hence, fractions 228-252 (5187-5758 ml, peak 5492 ml) are combined. UV spectrographic analysis of a sample of the combined fractions indicates that 262 mg. of the product is obtained. Recovery: 35.7%. Free sulfhydryl content: 82% of theoretical (by Ellman titration)
Example 14
L-Alanyl-D-alanyl-L-cysteinyl-L-lysyl-L-alanyl-L-phenylalanyl-L-phenylalanyl-D-tryptophyl-L-lysyl-L-threonyl-D-phenylalanyl-L-threonyl-L-seryl-L-cysteine cyclic (3 - 14) disulfide.
The linear peptide prepared in Example 13 is air oxidized to the corresponding cyclic peptide by the following procedure:
The combined fractions obtained in Example 13 (571 ml, theoreticaly containing 262 mg. of peptide) are diluted with 300 ml of distilled water to achieve a final solution having a concentration of 51 µg/ml. Sufficient concentrated ammonium hydroxide is added to bring the pH to 6.7. The solution is then stirred at room temperature in the dark for 64 hours at which time Ellman titration of an aliquot indicates complete oxidation.
The solution is concentrated in vacuo to a volume of about 20 ml. Glacial acetic acid (20 ml) is added and the solution is desalted by chomatography on a Sephadex G-25 Fine Column under the following conditions -- solvent: degassed 50% acetic acid; column size: 5.0 X 90 cm; temperature: 26°C; flow rate: 280 ml/hour; fraction volume: 16.35 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows two large peaks. The first represents the aggregated forms of the peptide, while the second represents monomeric material. Fractions 51-65 (817-1063 ml.) are combined and lyophilized to dryness in the dark. The resulting solid is dissolved in degassed 0.2M acetic acid (15 ml.) and the solution is chromatographed on a Sephadex G-25 Fine column under the following conditions -- solvent: degassed 0.2M acetic acid; column size: 5.0 x 150 cm; temperature: 26°C; flow rate: 486 ml/hour; fraction volume: 17 ml.
A plot of absorbance at 280 mµ of each fraction versus fraction number shows a single peak. UV spectrographic analysis indicates that the fractions represented by the main part of this peak comprise the desired product. Fractions 155-168 (2618-2856 ml; peak, 2687 ml) are combined and lyophilized in the dark to give the title peptide. UV spectrographic analysis of the combined fractions before lyophilization indicated that 111 mg. of the product is obtained. Recovery, 42.4% (from the linear form).
Amino acid analysis: <ul id="ul0018" list-style="none"><li>D- and L-Ala, 2.97; Cys, 2.0; Lys, 2.04; D- and L-Phe, 2.88; D-Trp, 0.90; Thr, 1.90; Ser, 0.80.</li></ul>
The above results are expressed as ratios to (D- and L-Ala + Lys)/2. All values are the average of 2 hydrolyses (scavenged by dimethylsulfoxide and thioglycolic acid) except for D-Trp, Phe, D-Phe, Ser(thiogly.colic acid scavenged only) and Cys (dimethylsulfoxide scavenged only)
Example 15
The effects of the tetradecapeptides of Formula III on the inhibition of growth hormone, insulin, and glucagon can be elicited and demonstrated in the following test procedures:
A. Growth Hormone Inhibition In Rats:
This test is a modification of the method of P. Brazeau et al., Endocrinology 94, 184 (1974). Male rats (weighing 100-110 g.) are divided into three groups of eight rats each. Each rat is administered sodium pentobarbital at a dose of 4 mg/rat (I.P.) to stimulate growth hormone (GH) secretion. Simultaneously, one group of rats receives the test compound (S.C.); the second group receives somatostatin (S.C.); and the third group (control) receives saline (S.C.). Twenty-minutes later, the animals are decapitated and blood samples are collected. The serum concentration of growth hormone (GH) is determined by radioimmunoassay. The mean GH concentration (+ standard error of the mean) is calculated for each group. The percent inhibition of GH release (as compared to saline controls) is then calculated for the test compound and for somatostatin. When tested as above-described, the peptides of Example 4, 7, 10, and 14, representative of the peptides of Formula III, gave the results set forth below in Table I: <tables id="tabl0003" num="0003"><img file="EP0011366A2_D0009.tif" /></tables><tables id="tabl0004" num="0004"><img file="EP0011366A2_D0010.tif" /></tables>
B. Insulin and Glucagon Inhibition In Dogs:
A normal dog is fasted overnight. An intravenous (I.V.) infusion of the test compound (dissolved in saline) is begun. Thirty minutes thereafter an additional infusion of L-alanine (dissolved in saline) is begun and is continued for a total of 15 minutes so that a total dose of about 1 mmole of L-alanine per kg. body weight is given. Infusion of the test compound is continued for an additional 15 minute period.
Blood samples are taken periodically before (at -20, -10 and -1 minutes) and after (5, 10, 15, 30, 35, 40, 45, 50, 60, 90, 120 and 150 minutes) the start of the infusion of the test compound. The serum insulin and serum glucagon concentrations in the blood are determined by radioimmunoassay. A plot is made of the glucagon and insulin concentrations versus time. The plot obtained from the test compound is compared to plots obtained from somatostatin and saline (controls) in similar experiments.
Infusion of L-alanine (in the absence of somatostatin or active test compound) causes an abrupt increase in serum insulin and glucagon concentrations. The concentrations return to basal levels after the L-alanine infusion is terminated. Infusion of somatostatin (alone) causes a decrease in basal serum concentrations of insulin and glucagon. In the presence of L-alanine, somatostatin inhibits the increase in insulin and glucagon concentrations induced by the L-alanine.
When tested according to the procedure above-described the peptides of Examples 4, 7, 10, and 14, illustrative of the peptide of Formula III, produced no significant inhibition of insulin or glucagon concentration. The doses employed were as follows: <ul id="ul0019" list-style="none"><li>Example 4: 0.147 µg/kg/min.</li><li>Example 7: 0.182 µg/kg/min</li><li>Example 10: 0.247 µg/kg/min.</li><li>Example 14: 0.092 µg/kg/min; 0.126 µg/ kg/min; 0.128 pg/kg/min; 0.198 µg/kg/min; and 0.305 mg/kg/min. (5 test doses).</li></ul>
The compounds of Formula III display low toxicity and are suitable for administration to warm blooded mammals in pharmaceutically-acceptable compositions, for example S.C., I.V., intramuscularly, or oral compositions. These compositions are prepared using common excipients known to those skilled in the art.
Contents3
18 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10 Sheet 11 Sheet 12 Sheet 13 Sheet 14 Sheet 15 Sheet 16 Sheet 17 Sheet 18
Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| EP0030920A3 | Cited by | European Patent Office (EPO) | Search report |
| EP0030920A2 | Cited by | European Patent Office (EPO) | Search report |
| FR2458539A1 | Cited by | France | Search report |
| EP0022621A1 | Cited by | European Patent Office (EPO) | Search report |
| FR2266516A1 | Cites | France | Search report |
| FR2320108A1 | Cites | France | Search report |
| FR2362121A1 | Cites | France | Search report |
| US4100117A | Cites | United States of America | Search report |
13 members in 9 offices
Priority claims5
| Document | Office | Kind | Date |
|---|---|---|---|
| 948117 | United States of America | – | |
| 94811778 | United States of America | A | |
| 94811778 | United States of America | A | |
| 948117 | – | – | – |
| US19780948117 | – | – | – |
Members13
| Document | Office | Kind | |
|---|---|---|---|
| IL58337A0 | Israel | A0 | |
| IL58337D0 | Israel | D0 | |
| LU81733A1 | Luxembourg | A1 | |
| BE879107A | Belgium | A | |
| JPS5549344A | Japan | A | |
| GB2030572A | United Kingdom | A | |
| US4202802A | United States of America | A | |
| FR2439181A1 | France | A1 | |
| EP0011366A2This record | European Patent Office (EPO) | A2 | |
| FR2453138A1 | France | A1 | |
| EP0011366A3 | European Patent Office (EPO) | A3 | |
| CA1129846A | Canada | A | |
| GB2030572B | United Kingdom | B |
8 legal events, as the office reported them to INPADOC
Over the term
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|---|---|---|
| Information on inventor provided before grant (corrected)RIN1 | RIN1 | |
| Application deemed to be withdrawnWithdrawn18D | 18D | |
| Information on the status of an ep patent application or granted ep patentGrantedSTATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWNSTAA | STAA | |
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Numbers
- Publication
- 0011366
- Publication, DOCDB
- 0011366
- Publication, EPODOC
- EP0011366
- Application
- 79302073
- Application, DOCDB
- 79302073
- Application, EPODOC
- EP19790302073
Titles3
- German
- Synthetische Peptide, ihre Herstellung, sie enthaltende pharmazeutische Zusammensetzungen und Zwischenprodukte für ihre Herstellung
- English
- Synthetic peptides, their preparation, pharmaceutical formulations containing them and intermediates for their preparation
- French
- Peptides synthétiques, leur préparation, compositions pharmaceutiques les contenant et intermédiaires pour leur préparation
Classification
- CPC, 5
- C07K14/6555
- Y10S930/16
- A61P3/00
- A61P3/08
- A61P3/10
- IPC, 8
- A61K38 04
- A61P3 00
- A61P3 08
- A61P3 10
- C07C231 00
- C07K1 113
- C07K14 575
- C07K14 655
Designated states1
- Contracting states, 1
- Sweden