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Biomedical subjects

J M Ostresh

Publications and source records attributed to J M Ostresh.

28 records · Page 2Linked to original sources

Perturbation of peptide conformations induced in anisotropic environments.

Reversed-phase high performance liquid chromatography (RP HPLC) has been found to be a convenient and powerful tool for the study of the secondary structure of peptides. Here, the ability of proline to perturb the secondary structures of peptides induced at aqueous-lipid interfaces and the induced conformation of polyproline peptides were investigated by means of RP HPLC. For these studies, four different complete sets of substitution analogues of model peptides expected to have specific induced conformations were used. In the first two studies, a single lysine was "walked" through two 18-residue polyproline sequences (one N-acetylated, the other not). In the remaining two studies, a proline was "walked" through two different sequences that had been found earlier to be induced into an alpha-helical conformation during RP HPLC (an 18-residue polyalanine sequence and the amphipathic 14-residue sequence Ac-LLKLLKKLLKKLKK-NH2). Sixty-eight individual analogues were synthesized for this study and the effect of the respective substitutions on retention times was determined. The results are consistent with the concept that, upon interaction with the C-18 of the stationary phase during RP HPLC, polyproline is induced into a type II helical conformation, polyalanine into an alpha-helical conformation, and Ac-LLKLLKKLLKKLKK-NH2 into an amphipathic alpha-helical array. In an extension of this study, the antimicrobial activities of Ac-LLKLLKKLLKKLKK-NH2 and its 18 proline substitution analogues were found to be inversely correlated with their RP HPLC retention times.

Amino Acid Sequence↗

A completely synthetic toxoid vaccine containing Escherichia coli heat-stable toxin and antigenic determinants of the heat-labile toxin B subunit.

The immunodeterminant regions of the Escherichia coli heat-labile toxin B subunit were identified by determining the antigenicity, by using enzyme-linked immunosorbent assays, of synthetically produced peptides corresponding to various segments of its 124-amino-acid sequence. The addition of the 18-amino-acid sequence of heat-stable toxin (ST) to some of these peptides enhanced their B subunit antigenicity. Peptide residues containing the 26 amino acids of B subunit sequence 58 to 83 joined to the 18-amino-acid sequence of ST yielded a 44-amino-acid peptide whose antigenicity was 50% that of both native B subunit and ST. This peptide was completely nontoxic when tested in Chinese hamster ovary tissue culture, suckling mouse, and rat ligated ileal loop assays. Peroral immunization of rats with the polymeric form of this peptide yielded a dose-dependent response of intestinal immunoglobulin A antitoxin titers to both the ST and B subunit components and provided strong protection against challenge with viable ST- and heat-labile toxin-producing E. coli strains. The immunogenicity of the synthetic peptide in rats was the same as that of ST and about 50% that of native B subunit. The completely synthetic peptide vaccine has the following advantages over previously described toxoid vaccines that consist of synthetic ST chemically cross-linked to native B subunit derived from bacterial cultures: it is produced by a single synthetic process, it is completely nontoxic, and it is immunogenic for both ST and B subunit.

Amino Acid Sequence↗

Chemical synthesis of an octadecapeptide with the biological and immunological properties of human heat-stable Escherichia coli enterotoxin.

An eighteen-amino-acid peptide having the linear amino acid sequence of human heat-stable enterotoxin (ST) has been synthesized by solid phase peptide synthesis. The purified peptide could be obtained in yields approaching 25% after purification by size, charge, and high-performance ligand chromatography. This material was pure and identical to native ST by analytical high-performance ligand chromatography, amino acid analysis, paper electrophoresis and thin-layer chromatography. The formation of the disulfide bonds was critical for biological and immunological activity and were tentatively determined to be between cysteines 5 and 14, 6 and 10, and 9 and 17. This synthetic peptide had full immunological and biological activity when compared to native ST by enzyme-linked immunosorbent assay and the suckling mouse assay respectively.

Amino Acid Sequence↗

alpha-Neo-endorphin: receptor binding properties of the tritiated ligand.

Tritiated porcine alpha-neo-endorphin has been prepared from its corresponding iodinated analog. The iodinated analog (diiodotyrosine at position 1) was synthesized, along with its non-iodinated counterpart, by the solid-phase method. Catalytic exchange of this iodinated analog in the presence of tritium yielded tritiated porcine alpha-neo-endorphin having a specific activity of 45.5 Ci/mmole. Both the native, iodinated and tritiated alpha-neo-endorphin analogs were shown to be homogenous by chromatography on carboxymethylcellulose, paper chromatography, paper electrophoresis, high performance liquid chromatography and amino acid analysis. For the first time binding of alpha-neo-endorphin to rat membrane preparations is described using [3H2-Tyr1]alpha-neo-endorphin as the ligand. The binding is time-dependent and saturable with respect to alpha-neo-endorphin. Scatchard analysis was bi-phasic with KDs of 0.20 and 3.75 nM. Displacement binding studies indicate that the receptor for alpha-neo-endorphin has "kappa" and possibly "epsilon" binding characteristics.

Animals↗

Tethered libraries: solid-phase synthesis of substituted urea-linked bicyclic guanidines.

The general concept of tethered combinatorial libraries of compounds in which two pharmacophores are found is described. In particular, an improved method for the solid-phase synthesis of bicyclic guanidines from reduced N-acylated dipeptides, and its use in the synthesis of urea-linked bicyclic guanidines, is described. The exhaustive reduction of glutamine-containing resin-bound N-acylated dipeptides, using borane-THF, generated compounds containing three secondary amines and one primary amine. Following selective trityl protection of the primary amine, treatment of the three secondary amines with thiocarbonyldiimidazole (CSIm2) and mercuric acetate (Hg(OAc)2) generated the resin-bound bicyclic guanidines. Following trityl deprotection, an Fmoc-amino acid was coupled. Upon removal of the Fmoc protecting group, the resulting primary amine was treated with hexyl isocyanate to generate the urea-linked bicyclic guanidines. The desired products were cleaved from the resin using hydrogen fluoride. The selection of building blocks and characterization of controls for the synthesis of a combinatorial library is discussed.

Bridged Bicyclo Compounds↗

A novel approach for the solid-phase synthesis of substituted cyclic guanidines, their respective bis analogues, and N-acylated guanidines from N-acylated amino acid amides.

An efficient method for the solid-phase synthesis of cyclic guanidines from N-acylated amino acid amides, bis cyclic guanidines from N-acylated dipeptides derived from orthogonally protected diamino acids, and N-acylated guanidines from disubstituted cyclic guanidines is described. The exhaustive reduction of N-acylated amino acid amides yields diamines that on treatment with cyanogen bromide lead to the formation of cyclic guanidines. Resin-bound orthogonally protected diamino acids (i.e., N(alpha)-Fmoc-N(x)-(Boc)-diamino acid, x = beta, gamma, delta, epsilon) were N-acylated following removal of the Fmoc group. Removal of the Boc functionality from the side chain then generated a primary amine. Subsequent coupling of Boc amino acids, followed by removal of the Boc group, generated dipeptides that were N-acylated. Exhaustive reduction of amide bonds of the N-acylated dipeptides generated tetraamines having four secondary amines, which upon cyclization with cyanogen bromide afforded the resin-bound trisubstituted bis cyclic guanidines. Treatment of the resin-bound disubstituted cyclic guanidines with carboxylic acids gave N-acylated guanidines. On the basis of their high yield and purity, bis cyclic guanidines derived from N(alpha)-Fmoc-N(epsilon)-Boc-lysine and N-acylated guanidines were chosen for preparation of mixture-based combinatorial libraries. Details of the preparation of these positional scanning libraries using the "libraries from libraries" concept are presented.

Amides↗

Solid-phase synthesis of substituted imidazoline-tethered 2,3-diketopiperazines, cyclic ureas, and cyclic thioureas.

Efficient methods for the solid-phase synthesis of imidazoline-tethered 2,3-diketopiperazines, cyclic ureas, and cyclic thioureas are described. Following the exhaustive reduction of resin-bound dipeptides derived from orthogonally protected diamino acids, the primary amine of the resulting tetraamines was selectively protected with Dde. The compounds were then selectively cyclized via their secondary amines with three different diimidazole derivatives ((COIm)(2), COIm(2), CSIm(2)). Upon Dde removal, the compounds were selectively N-acylated and dehydratively cyclized with POCl(3) to afford the imidazoline-tethered analogues in moderate yield and high purity. These procedures have been extended to prepare mixture-based combinatorial libraries. Details of the selection of building blocks for preparation of the positional scanning libraries based on the "libraries from libraries" approach are discussed.

Combinatorial Chemistry Techniques↗

Isotope-edited NMR studies of Fab'-peptide complexes.

Complexes formed between a monoclonal anti-peptide Fab' and its complementary 15N-labeled peptide were studied primarily by isotope-edited nuclear magnetic resonance (NMR) techniques. The monoclonal antibodies used were raised against peptides corresponding to residues 69-87 of the protein myohemerythrin. The complexes studied correspond to Fab' bound to the synthetic peptide, MHKDFLEKIGGL-NH2 (residues 76-87 of myohemerythrin) labeled with 15N at various amides. The combined approach of using specifically 15N-labeled peptides and reverse-detection solution NMR techniques has allowed us to monitor selectively the peptide component of the Fab'-peptide complexes studied. Through the use of these techniques, we have been able to directly observe the resonances of the bound peptide, as well as distinguish between free and bound peptide resonances in situations when excess peptide is present. NMR titrations of the Fab' with antigen have shown that there is one site to which the peptide strongly binds. The NMR parameters of the various residues examined thus far have been quite distinctive from each other, reflecting the ability of these techniques to detect differences in the local environment of the individual residues. Differences with respect to these parameters among the various residues may be related to the overall antigenic properties of the peptide.

Antigen-Antibody Complex↗