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Updated: Jun 3, 2026

Fluorescence Assays for the Study of Mycobacterium tuberculosis Interaction with the Immune Receptor SLAMF1
Published on: February 28, 2025
The HtrA-like serine protease PepD interacts with and modulates the Mycobacterium tuberculosis 35-kDa antigen outer
Mark J White1, John P Savaryn, Daniel J Bretl
1Department of Microbiology and Molecular Genetics, Medical College of Wisconsin, Milwaukee, Wisconsin, United States of America.
Abstract:
Mycobacterium tuberculosis remains a significant global health concern largely due to its ability to persist for extended periods within the granuloma of the host. While residing within the granuloma, the tubercle bacilli are likely to be exposed to stress that can result in formation of aberrant proteins with altered structures. Bacteria encode stress responsive determinants such as proteases and chaperones to deal with misfolded or unfolded proteins. pepD encodes an HtrA-like serine protease and is thought to process proteins altered following exposure of M. tuberculosis to extra-cytoplasmic stress. PepD functions both as a protease and chaperone in vitro, and is required for aspects of M. tuberculosis virulence in vivo. pepD is directly regulated by the stress-responsive two-component signal transduction system MprAB and indirectly by extracytoplasmic function (ECF) sigma factor SigE. Loss of PepD also impacts expression of other stress-responsive determinants in M. tuberculosis. To further understand the role of PepD in stress adaptation by M. tuberculosis, a proteomics approach was taken to identify binding proteins and possible substrates of this protein. Using subcellular fractionation, the cellular localization of wild-type and PepD variants was determined. Purified fractions as well as whole cell lysates from Mycobacterium smegmatis or M. tuberculosis strains expressing a catalytically compromised PepD variant were immunoprecipitated for PepD and subjected to LC-MS/MS analyses. Using this strategy, the 35-kDa antigen encoding a homolog of the PspA phage shock protein was identified as a predominant binding partner and substrate of PepD. We postulate that proteolytic cleavage of the 35-kDa antigen by PepD helps maintain cell wall homeostasis in Mycobacterium and regulates specific stress response pathways during periods of extracytoplasmic stress.
Insights
Mycobacterium tuberculosis uses the PepD protease to manage cellular stress and maintain virulence. PepD cleaves the 35-kDa antigen, aiding cell wall homeostasis and stress response pathways.
Area of Science:
- Microbiology
- Molecular Biology
- Protein Biochemistry
Background:
- Mycobacterium tuberculosis persists in host granulomas, facing stress that causes protein damage.
- Bacteria utilize stress-responsive proteases and chaperones, like PepD, to handle misfolded proteins.
- PepD, an HtrA-like serine protease, is crucial for M. tuberculosis virulence and stress adaptation.
Purpose of the Study:
- To elucidate the function of PepD in M. tuberculosis stress adaptation.
- To identify PepD's binding partners and substrates using a proteomics approach.
Main Methods:
- Proteomics analysis (LC-MS/MS) of PepD immunoprecipitated from Mycobacterium strains.
- Subcellular fractionation to determine PepD localization.
- Use of catalytically compromised PepD variants to identify substrates.
Main Results:
- The 35-kDa antigen, a PspA homolog, was identified as a primary binding partner and substrate of PepD.
- PepD's role in processing the 35-kDa antigen was confirmed.
Conclusions:
- PepD-mediated cleavage of the 35-kDa antigen is vital for maintaining cell wall homeostasis in Mycobacterium.
- This interaction regulates specific stress response pathways during extracytoplasmic stress.
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