Sphingolipid-mediated vesiculation in multidrug-resistant Sphingobacterium detergens under polymyxin B stress

Jihyeon Min1, Yewon Woo1, Yerim Park1

  • 1Laboratory of Molecular Environmental Microbiology, Department of Environmental Science and Ecological Engineering, Korea University, Seoul, Republic of Korea.

Insights

Sphingobacterium detergens uses sphingolipids to build outer membrane vesicles, a defense mechanism against polymyxin B. Inhibiting sphingolipid synthesis increases susceptibility to this antibiotic, revealing a novel therapeutic target.

Area of Science:

  • Microbiology
  • Bacterial Physiology
  • Drug Resistance Mechanisms

Background:

  • Environmental bacteria can exhibit antibiotic tolerance without possessing known resistance genes.
  • Sphingobacterium detergens E70 displays multidrug resistance despite a limited number of annotated antibiotic resistance genes (ARGs).
  • Comparative genomics of 62 Sphingobacterium strains revealed a low prevalence of ARGs, typically linked to macrolide, phenicol, or tetracycline resistance.

Purpose of the Study:

  • To investigate non-canonical antibiotic resistance mechanisms in Sphingobacterium.
  • To elucidate the role of sphingolipids in bacterial envelope integrity and stress adaptation.
  • To identify potential therapeutic targets for combating antibiotic resistance.

Main Methods:

  • Scanning and transmission electron microscopy to observe outer membrane changes.
  • Fluorescence-based cytometry and microscopy to analyze phenotypic alterations.
  • Inhibition of sphingolipid biosynthesis using myriocin and subsequent analysis.
  • Confocal imaging with dansyl-labeled polymyxin B to study membrane permeability.

Main Results:

  • Polymyxin B (PMB) induced extensive outer membrane vesiculation in S. detergens E70.
  • PMB exposure led to enhanced biofilm formation, altered surface charge, and changes in lipid composition.
  • Myriocin treatment reduced vesiculation, impaired growth, and increased PMB permeability.
  • Sphingolipids were found to be crucial for membrane remodeling and PMB resilience.

Conclusions:

  • Sphingolipids play a previously unrecognized role in polymyxin B resistance.
  • Sphingolipid-dependent outer membrane vesiculation serves as a structural defense mechanism.
  • Targeting sphingolipid metabolism could be a viable strategy to overcome antibiotic resistance.

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