Construction of Five Tryptophan Isomers and Application of the Isomers to Solid‐Phase Total Syntheses of Lysocin E Derivatives

Author:

Nakata Yosuke1,Fu Junhao1,Itoh Hiroaki1ORCID,Panthee Suresh23ORCID,Hamamoto Hiroshi4ORCID,Sekimizu Kazuhisa3ORCID,Inoue Masayuki1ORCID

Affiliation:

1. Graduate School of Pharmaceutical Sciences The University of Tokyo 7-3-1 Hongo, Bunkyo-ku Tokyo 113-0033 Japan

2. GenEndeavor LLC 26219 Eden Landing Rd Hayward CA, 94545 USA

3. Faculty of Pharma-Science Teikyo University 359 Otsuka, Hachioji Tokyo 192-0395 Japan

4. Yamagata University Faculty of Medicine 2-2-2 Iida-Nishi, Yamagata Yamagata 990-9585 Japan

Abstract

AbstractTryptophan (Trp) plays a unique role in peptides and proteins as its indole ring possesses an electron‐rich character and an N1−H hydrogen‐bond donor. Because of its non‐rotationally symmetric structure, synthetic alterations of the orientation of the indole ring would modulate the intrinsic structures and functions of peptides and proteins. Here we developed synthetic routes to the five Trp isomers in which the C3‐substitution of the indole ring was changed to the C2/4/5/6/7‐substitutions, and applied the five monomers to Fmoc‐based solid‐phase peptide synthesis. Specifically, the five monomers were prepared via Negishi cross‐coupling reactions of C2/4/5/6/7‐iodoindoles. To demonstrate the applicability of the monomers to the solid‐phase synthesis, the five Trp isomers of macrocyclic antibiotic lysocin E were selected as target molecules and synthesized through peptide elongation, on‐resin macrocyclization, and global deprotection. The Trp isomers displayed markedly weaker antibacterial activity than the parent natural product, revealing the biological importance of the precise three‐dimensional shape of the original Trp residue of lysocin E. The present methods for the preparation and application of these five Trp isomers provide a new strategy for analyzing and modifying the specific functions of numerous Trp‐containing peptides and proteins beyond this study.

Funder

Japan Society for the Promotion of Science

Institute for Fermentation, Osaka

Publisher

Wiley

Subject

General Chemistry,Catalysis,Organic Chemistry

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