A newly identified prophage-encoded gene, ymfM, causes SOS-inducible filamentation in Escherichia coli

Shirin Ansari1,2, James C Walsh2, Amy L Bottomley1

  • 1The ithree institute, Faculty of Science, University of Technology Sydney, Sydney, Australia.

Insights

Researchers identified the e14 prophage gene ymfM as a novel cell division inhibitor in Escherichia coli. This discovery reveals alternative pathways for bacterial filamentation during stress responses, crucial for survival and antibiotic resistance.

Area of Science:

  • Microbiology
  • Bacterial cell division
  • Stress response mechanisms

Background:

  • Rod-shaped bacteria like Escherichia coli exhibit filamentation, a stress-induced elongation, often linked to DNA damage and the SOS response.
  • While SulA is a known inhibitor of cell division during the SOS response in E. coli, the e14 prophage was suspected to encode another inhibitor (SfiC) for over 35 years.
  • Understanding bacterial stress responses is vital for addressing antibiotic resistance and pathogenicity.

Purpose of the Study:

  • To identify the specific gene responsible for SOS-inducible cell division inhibition encoded by the e14 prophage.
  • To characterize the mechanism of action of this novel cell division inhibitor.
  • To investigate the role of alternative cell division inhibition pathways during bacterial stress.

Main Methods:

  • High-throughput overexpression screen in E. coli to identify potential cell division inhibitors.
  • Inducible expression of the e14 prophage gene ymfM from a plasmid to assess its effect on cell morphology.
  • Microscopy to observe Z-ring formation and assess inhibition of cell division.
  • Genetic analysis to confirm ymfM's role in the SfiC phenotype and its independence from known inhibitors (SulA, SlmA, MinC).

Main Results:

  • Inducible expression of ymfM in E. coli led to filamentation, confirming its role as a cell division inhibitor.
  • YmfM inhibits Z-ring formation independently of known inhibitors like SulA, SlmA, and MinC.
  • YmfM contributes to filamentation during the SOS response, establishing it as the SfiC phenotype gene.

Conclusions:

  • The e14 prophage gene ymfM is identified as the long-sought SfiC, a novel SOS-inducible cell division inhibitor in E. coli.
  • The study reveals the existence of multiple, independent pathways for cell division inhibition during bacterial stress responses.
  • This finding underscores the complexity of bacterial stress adaptation and necessitates further research into additional inhibitors and their functional significance.

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