The highly conserved MraZ protein is a transcriptional regulator in Escherichia coli

Jesus M Eraso1, Lye M Markillie, Hugh D Mitchell

  • 1Department of Microbiology & Molecular Genetics, University of Texas Medical School at Houston, Houston, Texas, USA.

Insights

The bacterial MraZ protein represses cell division genes by binding DNA near the Pmra promoter. Its function is antagonized by MraW, revealing a novel regulatory mechanism for the division and cell wall gene cluster.

Area of Science:

  • Bacteriology
  • Molecular Biology
  • Genetics

Background:

  • The division and cell wall (dcw) gene cluster is essential for bacterial growth.
  • The mraZ and mraW genes are conserved within the dcw cluster, but their function remains unclear.
  • No regulator for the Pmra promoter, which controls dcw gene expression, has been identified.

Purpose of the Study:

  • To investigate the function of the MraZ and MraW proteins in Escherichia coli.
  • To identify the regulatory role of MraZ in the context of the dcw gene cluster.
  • To elucidate the interaction between MraZ and MraW.

Main Methods:

  • Overexpression of MraZ and MraW in E. coli.
  • Construction and testing of mraZ and mraW null mutants.
  • Localization studies using MraZ-green fluorescent protein.
  • DNA-binding assays with purified MraZ.
  • Reporter gene assays (mraZ-lacZ).
  • Transcriptome sequencing (RNA-seq).

Main Results:

  • MraZ overproduction is toxic and inhibits cell division, while MraW co-overproduction suppresses this toxicity.
  • MraZ binds DNA upstream of the Pmra promoter and represses its activity.
  • MraZ also binds to DNA regions upstream of genes outside the dcw cluster, such as mioC.
  • Loss of MraW function exacerbates MraZ toxicity, indicating antagonistic roles.

Conclusions:

  • MraZ acts as a DNA-binding repressor of the Pmra promoter and other essential genes.
  • MraZ and MraW exhibit antagonistic functions in regulating cell division and cell wall synthesis.
  • This study reveals a novel regulatory mechanism involving MraZ and MraW within the bacterial dcw gene cluster.

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