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Updated: Feb 14, 2026

Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
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.
Abstract:
Polymyxins such as colistin are antibiotics used as a final line of defense in the management of infections with multidrug-resistant Gram-negative bacteria. Although natural resistance to polymyxins is rare, the discovery of a mobilized colistin resistance gene (mcr-1) in gut bacteria has raised significant concern. As an intramembrane enzyme, MCR-1 catalyzes the transfer of phosphoethanolamine (PEA) to the 1 (or 4')-phosphate group of the lipid A moiety of lipopolysaccharide, thereby conferring colistin resistance. However, the structural and biochemical mechanisms used by this integral membrane enzyme remain poorly understood. Here, we report the modeled structure of the full-length MCR-1 membrane protein. Together with molecular docking, our structural and functional dissection of the complex of MCR-1 with its phosphatidylethanolamine (PE) substrate suggested the presence of a 12 residue-containing cavity for substrate entry, which is critical for both enzymatic activity and its resultant phenotypic resistance to colistin. More importantly, two periplasm-facing helices (PH2 and PH2') of the trans-membrane domain were essential for MCR-1 activity. MALDI-TOF MS and thin-layer chromatography assays provide both in vivo and in vitro evidence that MCR-1 catalyzes the transfer of PEA from the PE donor substrate to its recipient substrate lipid A. Also, the chemical modification of lipid A species was detected in clinical species of bacteria carrying mcr-1 Our results provide mechanistic insights into transferable MCR-1 polymyxin resistance, raising the prospect of rational design of small molecules that reverse bacterial polymyxin resistance, as a last-resort clinical option to combat pathogens with carbapenem resistance.
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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