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Published on: July 7, 2020
Antimicrobial sensing coupled with cell membrane remodeling mediates antibiotic resistance and virulence in
Ayesha Khan1,2,3,4, Milya Davlieva5, Diana Panesso1,2,6
1Center for Antimicrobial Resistance and Microbial Genomics, McGovern Medical School, University of Texas Health Science Center, Houston, TX 77030.
Abstract:
Bacteria have developed several evolutionary strategies to protect their cell membranes (CMs) from the attack of antibiotics and antimicrobial peptides (AMPs) produced by the innate immune system, including remodeling of phospholipid content and localization. Multidrug-resistant Enterococcus faecalis, an opportunistic human pathogen, evolves resistance to the lipopeptide daptomycin and AMPs by diverting the antibiotic away from critical septal targets using CM anionic phospholipid redistribution. The LiaFSR stress response system regulates this CM remodeling via the LiaR response regulator by a previously unknown mechanism. Here, we characterize a LiaR-regulated protein, LiaX, that senses daptomycin or AMPs and triggers protective CM remodeling. LiaX is surface exposed, and in daptomycin-resistant clinical strains, both LiaX and the N-terminal domain alone are released into the extracellular milieu. The N-terminal domain of LiaX binds daptomycin and AMPs (such as human LL-37) and functions as an extracellular sentinel that activates the cell envelope stress response. The C-terminal domain of LiaX plays a role in inhibiting the LiaFSR system, and when this domain is absent, it leads to activation of anionic phospholipid redistribution. Strains that exhibit LiaX-mediated CM remodeling and AMP resistance show enhanced virulence in the Caenorhabditis elegans model, an effect that is abolished in animals lacking an innate immune pathway crucial for producing AMPs. In conclusion, we report a mechanism of antibiotic and AMP resistance that couples bacterial stress sensing to major changes in CM architecture, ultimately also affecting host-pathogen interactions.
Insights
Bacteria resist antibiotics by altering their cell membranes. A new protein, LiaX, acts as a sentinel, sensing threats and triggering defense mechanisms, enhancing bacterial survival and virulence.
Area of Science:
- Microbiology
- Molecular Biology
- Immunology
Background:
- Bacteria employ cell membrane (CM) remodeling as a defense against antibiotics and antimicrobial peptides (AMPs).
- Multidrug-resistant *Enterococcus faecalis* exhibits daptomycin resistance through CM anionic phospholipid redistribution.
- The LiaFSR stress response system is implicated in CM remodeling, but the precise mechanism remains unclear.
Purpose of the Study:
- To identify and characterize the LiaR-regulated protein responsible for sensing antibiotics/AMPs and initiating CM remodeling.
- To elucidate the mechanism by which LiaX mediates bacterial resistance and virulence.
Main Methods:
- Protein characterization of LiaX, including its domains and localization.
- Analysis of LiaX interaction with daptomycin and AMPs (e.g., LL-37).
- Assessment of LiaX-mediated CM remodeling and its impact on bacterial virulence in *Caenorhabditis elegans*.
Main Results:
- LiaX functions as an extracellular sentinel, sensing daptomycin and AMPs.
- The N-terminal domain of LiaX binds antibiotics/AMPs and activates the cell envelope stress response.
- The C-terminal domain of LiaX inhibits the LiaFSR system; its absence triggers CM remodeling.
- LiaX-mediated resistance enhances bacterial virulence in a host model, dependent on host AMP production.
Conclusions:
- A novel mechanism of antibiotic and AMP resistance is described, involving LiaX-mediated sensing and CM remodeling.
- This mechanism links bacterial stress response to significant changes in CM architecture.
- The findings highlight LiaX's role in bacterial survival, virulence, and host-pathogen interactions.
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