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Author Spotlight: Exploring Heat Shock Proteins in Malaria and Tuberculosis Infections
Published on: March 8, 2024
Functioning of Mycobacterial Heat Shock Repressors Requires the Master Virulence Regulator PhoP
Ritesh Rajesh Sevalkar1, Divya Arora2, Prabhat Ranjan Singh1
1CSIR-Institute of Microbial Technology, Chandigarh, India.
Abstract:
A hallmark feature of Mycobacterium tuberculosis pathogenesis lies in the ability of the pathogen to survive within macrophages under a stressful environment. Thus, coordinated regulation of stress proteins is critically important for an effective adaptive response of M. tuberculosis, the failure of which results in elevated immune recognition of the tubercle bacilli with reduced survival during chronic infections. Here, we show that virulence regulator PhoP impacts the global regulation of heat shock proteins, which protect M. tuberculosis against stress generated by macrophages during infection. Our results identify that in addition to classical DNA-protein interactions, newly discovered protein-protein interactions control complex mechanisms of expression of heat shock proteins, an essential pathogenic determinant of M. tuberculosis While the C-terminal domain of PhoP binds to its target promoters, the N-terminal domain of the regulator interacts with the C-terminal end of the heat shock repressors. Remarkably, our findings delineate a regulatory pathway which involves three major transcription factors, PhoP, HspR, and HrcA, that control in vivo recruitment of the regulators within the target genes and regulate stress-specific expression of heat shock proteins via protein-protein interactions. The results have implications on the mechanism of regulation of PhoP-dependent stress response in M. tuberculosisIMPORTANCE The regulation of heat shock proteins which protect M. tuberculosis against stress generated by macrophages during infection is poorly understood. In this study, we show that PhoP, a virulence regulator of the tubercle bacilli, controls heat shock-responsive genes, an essential pathogenic determinant of M. tuberculosis Our results unravel that in addition to classical DNA-protein interactions, complex mechanisms of regulation of heat shock-responsive genes occur through multiple protein-protein interactions. Together, these findings delineate a fundamental regulatory pathway where transcription factors PhoP, HspR, and HrcA interact with each other to control stress-specific expression of heat shock proteins.
Insights
Mycobacterium tuberculosis uses virulence regulator PhoP to control heat shock proteins, essential for surviving macrophage stress. This involves novel protein-protein interactions alongside DNA binding, revealing a key regulatory pathway for tuberculosis pathogenesis.
Area of Science:
- Microbiology
- Molecular Biology
- Pathogenesis
Background:
- Mycobacterium tuberculosis survives within macrophages by regulating stress proteins.
- Failure to coordinate stress protein response leads to immune recognition and reduced survival.
Purpose of the Study:
- To investigate the role of virulence regulator PhoP in the global regulation of heat shock proteins in M. tuberculosis.
- To elucidate the mechanisms, including protein-protein interactions, controlling heat shock protein expression.
Main Methods:
- Analysis of DNA-protein and protein-protein interactions involving PhoP, HspR, and HrcA.
- Investigating the regulatory pathway controlling heat shock protein expression.
Main Results:
- PhoP globally regulates heat shock proteins, crucial for M. tuberculosis survival under macrophage stress.
- Protein-protein interactions, in addition to DNA-protein interactions, are critical for regulating heat shock protein expression.
- A regulatory pathway involving PhoP, HspR, and HrcA controls stress-specific expression of heat shock proteins via interactions.
Conclusions:
- PhoP is a key regulator of heat shock proteins in M. tuberculosis.
- Complex regulatory mechanisms involving multiple transcription factors and protein-protein interactions govern stress response.
- Understanding this pathway offers insights into M. tuberculosis pathogenesis and potential therapeutic targets.
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