Mechanistic insights into transferable polymyxin resistance among gut bacteria

Yongchang Xu1, Jingxia Lin1, Tao Cui2

  • 1From the Department of Medical Microbiology and Parasitology, Zhejiang University School of Medicine, Hangzhou, Zhejiang 310058, China.

Insights

The MCR-1 enzyme confers colistin resistance by modifying lipid A. Understanding its structure and mechanism reveals a substrate entry cavity and key helices essential for activity, paving the way for new resistance-reversing drugs.

Area of Science:

  • Microbiology
  • Structural Biology
  • Drug Discovery

Background:

  • Polymyxins, like colistin, are crucial last-resort antibiotics against multidrug-resistant Gram-negative bacteria.
  • The emergence of the mobilized colistin resistance gene (mcr-1) in bacteria poses a significant global health threat.
  • The MCR-1 enzyme, responsible for resistance, is an integral membrane protein whose precise structural and biochemical mechanisms are not well understood.

Purpose of the Study:

  • To elucidate the structural and functional mechanisms of the MCR-1 enzyme.
  • To investigate the role of specific MCR-1 domains in conferring colistin resistance.
  • To provide insights for developing strategies to overcome MCR-1-mediated polymyxin resistance.

Main Methods:

  • Modeled the full-length MCR-1 membrane protein structure.
  • Utilized molecular docking to analyze the MCR-1-substrate complex.
  • Employed MALDI-TOF MS and thin-layer chromatography for in vitro and in vivo enzymatic assays.

Main Results:

  • Identified a 12-residue cavity crucial for substrate entry and MCR-1 activity.
  • Demonstrated that two periplasm-facing helices (PH2 and PH2') are essential for MCR-1 function.
  • Confirmed MCR-1 catalyzes the transfer of phosphoethanolamine (PEA) to lipid A, modifying it and conferring resistance, as observed in clinical isolates.

Conclusions:

  • Mechanistic insights into transferable MCR-1 polymyxin resistance were revealed.
  • The study highlights the critical role of the substrate entry cavity and specific transmembrane helices.
  • Findings support the rational design of small molecules to reverse bacterial polymyxin resistance.

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