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Open Source Antibiotics: Simple Diarylimidazoles Are Potent against Methicillin-Resistant Staphylococcus aureus

  • Dana M. Klug
  • , Edwin G. Tse
  • , Daniel G. Silva
  • , Yafeng Cao
  • , Susan A. Charman
  • , Jyoti Chauhan
  • , Elly Crighton
  • , Maria Dichiara
  • , Chris Drake
  • , David Drewry
  • , Flavio da Silva Emery
  • , Lori Ferrins
  • , Lee Graves
  • , Emily Hopkins
  • , Thomas A.C. Kresina
  • , Álvaro Lorente-Macías
  • , Benjamin Perry
  • , Richard Phipps
  • , Bruno Quiroga
  • , Antonio Quotadamo
  • Giada N. Sabatino, Anthony Sama, Andreas Schätzlein, Quillon J. Simpson, Jonathan Steele, Julia Shanu-Wilson, Peter Sjö, Paul Stapleton, Christopher J. Swain, Alexandra Vaideanu, Huanxu Xie, William Zuercher, Matthew H. Todd

Research output: Contribution to journalArticleResearchpeer-review

Abstract

Antimicrobial resistance (AMR) is widely acknowledged as one of the most serious public health threats facing the world, yet the private sector finds it challenging to generate much-needed medicines. As an alternative discovery approach, a small array of diarylimidazoles was screened against the ESKAPE pathogens, and the results were made publicly available through the Open Source Antibiotics (OSA) consortium (https://github.com/opensourceantibiotics). Of the 18 compounds tested (at 32 μg/mL), 15 showed >90% growth inhibition activity against methicillin-resistant Staphylococcus aureus (MRSA) alone. In the subsequent hit-to-lead optimization of this chemotype, 147 new heterocyclic compounds containing the diarylimidazole and other core motifs were synthesized and tested against MRSA, and their structure-activity relationships were identified. While potent, these compounds have moderate to high intrinsic clearance and some associated toxicity. The best overall balance of parameters was found with OSA_975, a compound with good potency, good solubility, and reduced intrinsic clearance in rat hepatocytes. We have progressed toward the knowledge of the molecular target of these phenotypically active compounds, with proteomic techniques suggesting TGFBR1 is potentially involved in the mechanism of action. Further development of these compounds toward antimicrobial medicines is available to anyone under the licensing terms of the project.

Original languageEnglish
Pages (from-to)2423-2435
Number of pages13
JournalACS Infectious Diseases
Volume9
Issue number12
DOIs
Publication statusPublished - 8 Dec 2023

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • antibacterials
  • antibiotics
  • bioactive molecules
  • Drug discovery
  • open science
  • organic synthesis

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