MCR-1-dependent lipid remodelling compromises the viability of Gram-negative bacteria
Siyuan Feng1,2, Wanfei Liang1,2, Jiachen Li1,2
1Program in Pathobiology, The Fifth Affiliated Hospital, Zhongshan School of Medicine, Sun Yat-Sen University, Guangdong, People's Republic of China.
Abstract:
The global dissemination of the mobilized colistin resistance gene, mcr-1, threatens human health. Recent studies by our group and others have shown that the withdrawal of colistin as a feed additive dramatically reduced the prevalence of mcr-1. Although it is accepted that the rapid reduction in mcr-1 prevalence may have resulted, to some extent, from the toxic effects of MCR-1, the detailed mechanism remains unclear. Here, we found that MCR-1 damaged the outer membrane (OM) permeability in Escherichia coli and Klebsiella pneumonia and that this event was associated with MCR-1-mediated cell shrinkage and death during the stationary phase. Notably, the capacity of MCR-1-expressing cells for recovery from the stationary phase under improved conditions was reduced in a time-dependent manner. We also showed that mutations in the potential lipid-A-binding pocket of MCR-1, but not in the catalytic domain, restored OM permeability and cell viability. During the stationary phase, PbgA, a sensor of periplasmic lipid-A and LpxC production that performed the first step in lipid-A synthesis, was reduced after MCR-1 expression, suggesting that MCR-1 disrupted lipid homeostasis. Consistent with this, the overexpression of LpxC completely reversed the MCR-1-induced OM permeability defect. We propose that MCR-1 causes lipid remodelling that results in an OM permeability defect, thus compromising the viability of Gram-negative bacteria. These findings extended our understanding of the effect of MCR-1 on bacterial physiology and provided a potential strategy for eliminating drug-resistant bacteria.
Insights
The MCR-1 gene damages bacterial outer membranes, causing cell death and reduced recovery. Restoring lipid homeostasis via LpxC can reverse this, offering a strategy against colistin-resistant bacteria.
Area of Science:
- Microbiology
- Molecular Biology
- Antimicrobial Resistance
Background:
- The spread of the mobilized colistin resistance gene (mcr-1) poses a significant threat to human health.
- Colistin withdrawal as a feed additive has reduced mcr-1 prevalence, but the exact toxic mechanism of MCR-1 is not fully understood.
Purpose of the Study:
- To elucidate the detailed mechanism by which MCR-1 impacts bacterial physiology.
- To investigate the role of MCR-1 in outer membrane permeability and cell viability.
Main Methods:
- Investigated the effect of MCR-1 expression on outer membrane permeability and cell viability in *Escherichia coli* and *Klebsiella pneumoniae*.
- Analyzed the impact of MCR-1 on lipid homeostasis, including PbgA and LpxC levels.
- Examined the effect of mutations in MCR-1 and LpxC overexpression on bacterial phenotypes.
Main Results:
- MCR-1 expression led to increased outer membrane permeability, cell shrinkage, and death in stationary-phase bacteria.
- MCR-1 expression reduced PbgA levels, indicating disruption of lipid homeostasis.
- Mutations in the MCR-1 lipid-A-binding pocket and LpxC overexpression restored outer membrane integrity and cell viability.
Conclusions:
- MCR-1 causes lipid remodelling, resulting in outer membrane permeability defects and compromising Gram-negative bacterial viability.
- Understanding MCR-1's mechanism provides insights into bacterial physiology and potential strategies for combating drug-resistant bacteria.
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