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Fluorescence Assays for the Study of Mycobacterium tuberculosis Interaction with the Immune Receptor SLAMF1
Published on: February 28, 2025
PepD participates in the mycobacterial stress response mediated through MprAB and SigE
Mark J White1, Hongjun He, Renee M Penoske
1Department of Microbiology and Molecular Genetics and Center for Biopreparedness and Infectious Diseases, Medical College of Wisconsin, 8701 Watertown Plank Road, Milwaukee, Wisconsin 53226-0509, USA.
Abstract:
Currently, one-third of the world's population is believed to be latently infected with Mycobacterium tuberculosis. The mechanisms by which M. tuberculosis establishes latent infection remain largely undefined. mprAB encodes a two-component signal transduction system required by M. tuberculosis for aspects of persistent infection. MprAB regulates a large and diverse group of genetic determinants in response to membrane stress, including the extracytoplasmic function (ECF) sigma factor sigE and the HtrA-like serine protease pepD. Recent studies have demonstrated that PepD functions as both a protease and chaperone in vitro. In addition, inactivation of pepD alters the virulence of M. tuberculosis in a mouse model system of infection. Here, we demonstrate that PepD plays an important role in the stress response network of Mycobacterium mediated through MprAB and SigE. In particular, we demonstrate that the protease activity of PepD requires the PDZ domain, in addition to the catalytic serine at position 317. pepD expression initiates from at least three promoters in M. tuberculosis, including one that is regulated by SigE and is located upstream of the mprA coding sequence. Deletion of pepD or mprAB in Mycobacterium smegmatis and M. tuberculosis alters the stress response phenotypes of these strains, including increasing sensitivity to SDS and cell wall antibiotics and upregulating the expression of stress-responsive determinants, including sigE. Taking these data together, we hypothesize that PepD utilizes its PDZ domain to recognize and process misfolded proteins at the cell membrane, leading to activation of the MprAB and SigE signaling pathways and subsequent establishment of a positive feedback loop that facilitates bacterial adaptation.
Insights
Mycobacterium tuberculosis uses the PepD protease and MprAB-SigE pathway to adapt to stress during infection. PepD
Area of Science:
- Molecular microbiology and bacterial pathogenesis.
- Bacterial stress response and adaptation mechanisms.
Background:
- Latent Mycobacterium tuberculosis infection affects one-third of the global population, with mechanisms poorly understood.
- The mprAB two-component system is crucial for M. tuberculosis persistence and regulates responses to membrane stress.
- PepD, an HtrA-like serine protease, is regulated by MprAB and involved in M. tuberculosis virulence.
Purpose of the Study:
- To elucidate the role of PepD in the Mycobacterium stress response network.
- To investigate the interplay between PepD, MprAB, and SigE signaling.
- To determine the structural requirements for PepD's protease activity.
Main Methods:
- Genetic manipulation of pepD and mprAB in Mycobacterium smegmatis and M. tuberculosis.
- Analysis of stress response phenotypes, including sensitivity to SDS and antibiotics.
- Assessment of gene expression, particularly for sigE.
- In vitro characterization of PepD's protease and chaperone activities, including PDZ domain function.
Main Results:
- PepD protease activity requires both its PDZ domain and catalytic serine (S317).
- PepD and MprAB are integral to the stress response network, mediating adaptation.
- Deletion mutants (pepD or mprAB) exhibit increased sensitivity to cell envelope stressors and upregulate stress-responsive genes like sigE.
- PepD is involved in a positive feedback loop with MprAB and SigE signaling.
Conclusions:
- PepD plays a critical role in Mycobacterium's adaptation to membrane and cell wall stress.
- The PepD-MprAB-SigE pathway forms a positive feedback loop, enhancing bacterial survival under stress.
- PepD likely functions by recognizing and processing misfolded membrane proteins, activating downstream signaling.
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