Regulated proteolysis of the alternative sigma factor SigX in Streptococcus mutans: implication in the escape from

Gaofeng Dong, Xiao-Lin Tian, Zubelda A Gomez

  • 1Department of Applied Oral Sciences, Faculty of Dentistry, Dalhousie University, 5981 University Avenue, Halifax, Nova Scotia B3H 1 W2, Canada. yung-hua.li@dal.ca.

BMC Microbiology
|July 10, 2014
PubMed
Abstract

Insights

Streptococcus mutans adaptor protein MecA targets the competence regulator SigX for degradation by the ClpC/ClpP protease complex. This mechanism, crucial for regulating DNA uptake, highlights MecA

Area of Science:

  • Microbiology
  • Molecular Biology
  • Bacterial Genetics

Background:

  • Streptococcus mutans utilizes the alternative sigma factor SigX (σX) to regulate competence, a state essential for DNA uptake.
  • MecA and ClpC act as negative regulators of competence, with MecA mediating SigX degradation by ClpC.

Purpose of the Study:

  • To elucidate the molecular mechanism by which MecA and ClpC negatively regulate competence in S. mutans.
  • To investigate the role of MecA in targeting SigX for degradation by the ClpC/ClpP protease complex.

Main Methods:

  • Analysis of SigX cellular levels under various genetic conditions (deletions, overexpression).
  • In vitro protein-protein interaction assays to map MecA domains involved in binding SigX and ClpC.
  • Investigation of SigX degradation in different growth media (complex vs. chemically defined).

Main Results:

  • SigX synthesis is transiently induced by competence-stimulating peptide (CSP) and rapidly degraded during competence escape.
  • MecA, ClpC, or ClpP deletions lead to SigX accumulation and prolonged competence; MecA overexpression accelerates SigX proteolysis.
  • MecA interacts with SigX (N-terminal domain) and ClpC (C-terminal domain), forming a ternary complex for ATP-dependent SigX degradation by ClpC/ClpP.

Conclusions:

  • MecA is essential for targeting SigX for degradation by the ClpC/ClpP protease complex in S. mutans.
  • MecA functions as an anti-sigma factor, controlling SigX stability during competence development.

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