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Rational design of balanced dual-targeting antibiotics with limited resistance.

Authors :
Akos Nyerges
Tihomir Tomašič
Martina Durcik
Tamas Revesz
Petra Szili
Gabor Draskovits
Ferenc Bogar
Žiga Skok
Nace Zidar
Janez Ilaš
Anamarija Zega
Danijel Kikelj
Lejla Daruka
Balint Kintses
Balint Vasarhelyi
Imre Foldesi
Diána Kata
Martin Welin
Raymond Kimbung
Dorota Focht
Lucija Peterlin Mašič
Csaba Pal
Source :
PLoS Biology, Vol 18, Iss 10, p e3000819 (2020)
Publication Year :
2020
Publisher :
Public Library of Science (PLoS), 2020.

Abstract

Antibiotics that inhibit multiple bacterial targets offer a promising therapeutic strategy against resistance evolution, but developing such antibiotics is challenging. Here we demonstrate that a rational design of balanced multitargeting antibiotics is feasible by using a medicinal chemistry workflow. The resultant lead compounds, ULD1 and ULD2, belonging to a novel chemical class, almost equipotently inhibit bacterial DNA gyrase and topoisomerase IV complexes and interact with multiple evolutionary conserved amino acids in the ATP-binding pockets of their target proteins. ULD1 and ULD2 are excellently potent against a broad range of gram-positive bacteria. Notably, the efficacy of these compounds was tested against a broad panel of multidrug-resistant Staphylococcus aureus clinical strains. Antibiotics with clinical relevance against staphylococcal infections fail to inhibit a significant fraction of these isolates, whereas both ULD1 and ULD2 inhibit all of them (minimum inhibitory concentration [MIC] ≤1 μg/mL). Resistance mutations against these compounds are rare, have limited impact on compound susceptibility, and substantially reduce bacterial growth. Based on their efficacy and lack of toxicity demonstrated in murine infection models, these compounds could translate into new therapies against multidrug-resistant bacterial infections.

Subjects

Subjects :
Biology (General)
QH301-705.5

Details

Language :
English
ISSN :
15449173 and 15457885
Volume :
18
Issue :
10
Database :
Directory of Open Access Journals
Journal :
PLoS Biology
Publication Type :
Academic Journal
Accession number :
edsdoj.695667e264814dc5919d30b833577001
Document Type :
article
Full Text :
https://doi.org/10.1371/journal.pbio.3000819