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October 2, 20250 citations

Polymyxin B lethality requires energy-dependent outer membrane disruption.

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CBC. BorrelliEDEdward J. A. DouglasSRSteven Riley

Key Points

  • Polymyxin B lethality occurs only with active metabolism in bacteria, emphasizing energy's role.
  • Killing of Escherichia coli by polymyxin B was dependent on the presence of carbon sources for lethality.
  • Outer membrane disruption, essential for antibiotic access, is not directly lethal but increases membrane permeability.
  • Inhibition of lipopolysaccharide synthesis due to resistance determinants can impede the antibiotic's action.

Abstract

Polymyxin antibiotics target lipopolysaccharides (LPSs) in both membranes of the bacterial cell envelope, leading to bacterial killing through a poorly defined mechanism. Here we demonstrate that metabolic activity is essential for the lethality of clinically relevant doses of polymyxin B (PmB) and leverage this insight to determine its mode of action. PmB killed exponential-phase Escherichia coli but did not eliminate stationary-phase cells unless a carbon source was available. Antibiotic lethality correlated with surface protrusions visible by atomic force microscopy and LPS loss from the outer membrane via processes that required LPS synthesis and transport but that were blocked by the MCR-1 polymyxin resistance determinant. While energy-dependent outer-membrane disruption was not directly lethal, it facilitated PmB access to the inner membrane, which the antibiotic permeabilized in an energy-independent manner, leading to cell death. This work reveals how metabolic inactivity confers tolerance of an important, membrane-targeting antibiotic.

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Cite This Study

Borrelli et al. (2025) studied this question.

synapsesocial.com/papers/68de5d9383cbc991d0a1ffdfhttps://doi.org/10.1038/s41564-025-02133-1
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