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September 17, 20250 citationsOpen Access

Peptidoglycan turnover promotes active transport of protein through the bacterial cell wall

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ZAZarina AkbaryKSKasturi SamantarayDSDan Shafir

Key Points

  • Smaller proteins pass through the bacterial cell wall easier, while larger proteins need larger pores for transport.
  • The study showed that size threshold affects protein transport through Bacillus subtilis, providing new insights into cell wall permeability.
  • Using genetically encoded probes, the research measured single-cell permeability to track protein movement through the cell wall.
  • This discovery sheds light on the role of peptidoglycan turnover in both cell wall integrity and protein transport processes.

Abstract

The bacterial cell wall is a critical load-bearing structure, but is not thought to be an important permeability barrier since proteins freely diffuse through isolated cell wall sacculi and bacteria secrete proteins without the aid of any known channels or transporters in the wall. Using new genetically encoded probes to measure the permeability of the cell in situ at the single-cell level, we discovered that the size threshold determining whether proteins can pass through the Bacillus subtilis sacculus is smaller than was previously thought. We found that transport of small proteins (15 kDa) required the generation of larger pores by inducing peptidoglycan hydrolysis unbalanced by synthesis. These data are consistent with physics-based models of diffusion through a random percolation network of finite thickness. Conversely, the ability of the innate immune factor phospholipase (15.2 kDa) to kill B. subtilis was inhibited by membrane de-polarization. The protective effect of de-polarization was dependent on latent peptidoglycan synthesis (decoupled from cell growth) by PBP1 - highlighting a new role for this enzyme - and on reduced peptidoglycan hydrolysis. These results demonstrate that the rapid peptidoglycan turnover that drives cell growth also promotes movement of phospholipase across the cell wall, identifying a quintessentially bacterial mechanism of active transport.

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Cite This Study

Akbary et al. (2025) studied this question.

synapsesocial.com/papers/68d4604031b076d99fa5f49ehttps://doi.org/10.1101/2025.09.12.675941
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