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Published on: September 27, 2018
Mycobacterium tuberculosis Rv2617c is involved in stress response and phage infection resistance
Liadrine Moukendza Koundi1, Ulrich Aymard Ekomi Moure2,3, Funmilayo Grâce Boni1
1Institute of Modern Biopharmaceuticals, State Key Laboratory Breeding Base of Eco-Environment and Bio-Resource of the Three Gorges Area, Key Laboratory of Eco-environments in Three Gorges Reservoir Region, Ministry of Education, School of Life Sciences, Southwest University, Chongqing, China.
Abstract:
Mycobacterium tuberculosis (M. tuberculosis) is the pathogen of human tuberculosis (TB). Resistance to numerous in vivo stresses, including oxidative stress, is determinant for M. tuberculosis intracellular survival, and understanding associated mechanisms is crucial for developing new therapeutic strategies. M. tuberculosis Rv2617c has been associated with oxidative stress response when interacting with other proteins in M. tuberculosis; however, its functional promiscuity and underlying molecular mechanisms remain elusive. In this study, we investigated the phenotypic changes of Mycobacterium smegmatis (M. smegmatis) expressing Rv2617c (Ms_Rv2617c) and its behavior in the presence of various in vitro stresses and phage infections. We found that Rv2617c conferred resistance to SDS and diamide while sensitizing M. smegmatis to oxidative stress (H2O2) and altered mycobacterial phenotypic properties (single-cell clone and motility), suggestive of reprogrammed mycobacterial cell wall lipid contents exemplified by increased cell wall permeability. Interestingly, we also found that Rv2617c promoted M. smegmatis resistance to infection by phages (SWU1, SWU2, D29, and TM4) and kept phage TM4 from destroying mycobacterial biofilms. Our findings provide new insights into the role of Rv2617c in resistance to oxide and acid stresses and report for the first time on its role in phage resistance in Mycobacterium.
Insights
The Mycobacterium tuberculosis Rv2617c protein alters Mycobacterium smegmatis phenotypes, conferring resistance to certain stresses and phages. This study reveals Rv2617c
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Mycobacterium tuberculosis causes tuberculosis and its survival relies on stress resistance.
- The function of Rv2617c in oxidative stress response is not fully understood.
- Understanding Rv2617c mechanisms is key for developing new anti-TB therapies.
Purpose of the Study:
- To investigate the functional role of Rv2617c in Mycobacterium smegmatis.
- To determine Rv2617c's impact on stress resistance and phage interactions.
- To elucidate the molecular mechanisms underlying Rv2617c's effects.
Main Methods:
- Expressing Rv2617c in Mycobacterium smegmatis (Ms_Rv2617c).
- Assessing Ms_Rv2617c phenotypic changes under various in vitro stresses (SDS, diamide, H2O2).
- Evaluating Ms_Rv2617c resistance to phage infections and biofilm integrity.
Main Results:
- Rv2617c conferred resistance to SDS and diamide but sensitized to oxidative stress (H2O2).
- Rv2617c altered mycobacterial cell wall properties, increasing permeability.
- Rv2617c enhanced resistance to multiple phages and protected biofilms from phage TM4.
Conclusions:
- Rv2617c plays a role in stress resistance, including oxidative and acid stresses.
- Rv2617c confers significant phage resistance in Mycobacterium species.
- Rv2617c's multifaceted roles offer potential therapeutic targets for tuberculosis.
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