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.

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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