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C Pattaroni

Publications and source records attributed to C Pattaroni.

5 recordsLinked to original sources

Cyclic hexapeptides related to somatostatin. Synthesis and biological testing.

As a continuation of our program to study the structure-function relationship of the peptide hormone somatostatin, we report the synthesis and biological potencies of a series of cyclic hexapeptide analogs related to somatostatin. The parent peptide of this series was designed by Veber and coworkers, c[-Pro6-Phe7-D-Trp8-Lys9-Thr10-Phe11-], and has been reported to be superactive in the inhibition of the release of growth hormone. (The superscript numbers refer to the positions of residues in native somatostatin). The series of analogs has been designed to examine the role of the so-called bridging region, Phe11-Pro6, which has been postulated to be important in maintaining the proper conformation of the biologically active tetrapeptide, Phe-D-Trp-Lys-Thr. We have incorporated peptidomimetics and the retro-inverso modification into the bridging region of the molecule, with the aim of affecting the conformational preferences found in the parent peptide. Results from the biological assay--in vitro inhibition of growth hormone--and the conformational analysis (adjoining paper) of our analogs will provide insight into the relationship between structure and biological activity of somatostatin.

Amino Acid Sequence↗

Cyclic hexapeptides related to somatostatin. Conformational analysis employing 1H-NMR and molecular dynamics.

We report the conformational analysis of a series of cyclic hexapeptides related to the hormone somatostatin utilizing 1H NMR spectroscopy and NOE restrained molecular dynamics. The conformational preferences and results from biological analysis of these analogs (previous paper) allow for refinement of the current understanding of the structure-activity relationship of somatostatin. For most of the molecules examined, a beta II' turn about the D-tryptophan-lysine residues, postulated to be required for biological activity, was present. From the NOE restrained molecular dynamics, it can be seen that the turn structure is important for the maintenance of the proper orientation of the side chains of the adjacent phenylalanine, tryptophan and lysine. The biologically active analogs have the side chains of lysine and D-tryptophan extended away from the 18-membered ring in close proximity to each other for a significant portion of the dynamic simulations. Although other conformations are accessible and monitored during the simulations, we believe this is important for biological recognition. The absence of the beta II' turn at the D-tryptophan-lysine disrupts this side chain array producing inactive molecules. The role of the bridging region, the Phe-Pro dipeptide, is to stabilize the beta II' turn and help maintain the proper orientation of the biologically important side chains.

Amino Acid Sequence↗

Interactive NMR and computer simulation studies of lanthionine-ring structures.

We report progress in elucidating the structure of nisin, a naturally occurring peptide antibiotic. Nisin contains five rings constrained by lanthionine or methyllanthionine bridges, as well as alpha, beta-unsaturated amino acids. We have determined conformations for two model compounds of ring A and a derivative of ring B through interactive nmr and computer simulation studies. High-resolution nmr techniques provides structural information, which was further refined through molecular dynamics simulations. These methods are being applied to the remaining constrained fragments of the molecule. This conformational information will be employed in an aufbau approach to determining the structure of the entire molecule.

Alanine↗

The reaction of anthramycin with DNA. Proton and carbon nuclear magnetic resonance studies on the structure of the anthramycin-DNA adduct.

Nuclear magnetic resonance techniques are used to confirm the points of attachment of anthramycin to DNA. Using 13C NMR spectroscopy, the C-11 resonance of anthramycin is shown to undergo a 16-ppm upfield shift upon formation of a covalent bond with DNA, indicative of an aminal linkage at that position. The site of attachment on the DNA is determined using the self-complementary oligodeoxyribonucleotide d-(ApTpGpCpApT) as a DNA model. Proton NMR, both in H2O and D2O solutions, provides a direct characterization of the anthramycin-oligonucleotide adduct. Upon covalent attachment to the duplex, a loss in the helical symmetry is observed, resulting in a doubling of several of the oligonucleotide resonances. Examination of the data confirms that the point of attachment of the anthramycin to the d-(ApTpGpCpApT) is at the guanine-NH2-position, consistent with the model proposed by Hurley and Petrusek (Hurley, L. H., and Petrusek, R. L. (1979) Nature (Lond.) 282, 529-531) and Petrusek et al. (Petrusek, R. L., Anderson, G. L., Garner, T. F., Fannin, Q. L., Kaplan, D. J., Zimmer, S. G., and Hurley, L. H. (1981) Biochemistry 20, 1111-1119).

Animals↗