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A Fluorescence-based Method to Study Bacterial Gene Regulation in Infected Tissues
Published on: February 19, 2019
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.
Background:
SigX (σX), the alternative sigma factor of Streptococcus mutans, is the key regulator for transcriptional activation of late competence genes essential for taking up exogenous DNA. Recent studies reveal that adaptor protein MecA and the protease ClpC act as negative regulators of competence by a mechanism that involves MecA-mediated proteolysis of SigX by the ClpC in S. mutans. However, the molecular detail how MecA and ClpC negatively regulate competence in this species remains to be determined. Here, we provide evidence that adaptor protein MecA targets SigX for degradation by the protease complex ClpC/ClpP when S. mutans is grown in a complex medium.
Results:
By analyzing the cellular levels of SigX, we demonstrate that the synthesis of SigX is transiently induced by competence-stimulating peptide (CSP), but the SigX is rapidly degraded during the escape from competence. A deletion of MecA, ClpC or ClpP results in the cellular accumulation of SigX and a prolonged competence state, while an overexpression of MecA enhances proteolysis of SigX and accelerates the escape from competence. In vitro protein-protein interaction assays confirm that MecA interacts with SigX via its N-terminal domain (NTD1-82) and with ClpC via its C-terminal domain (CTD123-240). Such an interaction mediates the formation of a ternary SigX-MecA-ClpC complex, triggering the ATP-dependent degradation of SigX in the presence of ClpP. A deletion of the N-terminal or C-terminal domain of MecA abolishes its binding to SigX or ClpC. We have also found that MecA-regulated proteolysis of SigX appears to be ineffective when S. mutans is grown in a chemically defined medium (CDM), suggesting the possibility that an unknown mechanism may be involved in negative regulation of MecA-mediated proteolysis of SigX under this condition.
Conclusion:
Adaptor protein MecA in S. mutans plays a crucial role in recognizing and targeting SigX for degradation by the protease ClpC/ClpP. Thus, MecA actually acts as an anti-sigma factor to regulate the stability of SigX during competence development.
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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