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Evolution-guided discovery of antibiotics that inhibit peptidoglycan remodelling.

Authors :
Culp, Elizabeth J.
Waglechner, Nicholas
Wang, Wenliang
Fiebig-Comyn, Aline A.
Hsu, Yen-Pang
Koteva, Kalinka
Sychantha, David
Coombes, Brian K.
Van Nieuwenhze, Michael S.
Brun, Yves V.
Wright, Gerard D.
Source :
Nature; 2/27/2020, Vol. 578 Issue 7796, p582-587, 6p, 1 Diagram, 4 Charts, 9 Graphs
Publication Year :
2020

Abstract

Addressing the ongoing antibiotic crisis requires the discovery of compounds with novel mechanisms of action that are capable of treating drug-resistant infections1. Many antibiotics are sourced from specialized metabolites produced by bacteria, particularly those of the Actinomycetes family2. Although actinomycete extracts have traditionally been screened using activity-based platforms, this approach has become unfavourable owing to the frequent rediscovery of known compounds. Genome sequencing of actinomycetes reveals an untapped reservoir of biosynthetic gene clusters, but prioritization is required to predict which gene clusters may yield promising new chemical matter2. Here we make use of the phylogeny of biosynthetic genes along with the lack of known resistance determinants to predict divergent members of the glycopeptide family of antibiotics that are likely to possess new biological activities. Using these predictions, we uncovered two members of a new functional class of glycopeptide antibiotics—the known glycopeptide antibiotic complestatin and a newly discovered compound we call corbomycin—that have a novel mode of action. We show that by binding to peptidoglycan, complestatin and corbomycin block the action of autolysins—essential peptidoglycan hydrolases that are required for remodelling of the cell wall during growth. Corbomycin and complestatin have low levels of resistance development and are effective in reducing bacterial burden in a mouse model of skin MRSA infection. The glycopeptide antibiotic-related compounds complestatin and corbomycin function by binding to peptidoglycan and blocking the action of autolysins—peptidoglycan hydrolase enzymes that remodel the cell wall during growth. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00280836
Volume :
578
Issue :
7796
Database :
Complementary Index
Journal :
Nature
Publication Type :
Academic Journal
Accession number :
141916925
Full Text :
https://doi.org/10.1038/s41586-020-1990-9