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Using Microtiter Dish Radiolabeling for Multiple In Vivo Measurements Of Escherichia coli pppGpp Followed by Thin Layer Chromatography
Published on: June 4, 2019
Essential roles for Mycobacterium tuberculosis Rel beyond the production of (p)ppGpp
Leslie A Weiss1, Christina L Stallings
1Department of Molecular Microbiology, Washington University School of Medicine, St. Louis, Missouri, USA.
Abstract:
In Mycobacterium tuberculosis, the stringent response to amino acid starvation is mediated by the M. tuberculosis Rel (RelMtb) enzyme, which transfers a pyrophosphate from ATP to GDP or GTP to synthesize ppGpp and pppGpp, respectively. (p)ppGpp then influences numerous metabolic processes. RelMtb also encodes a second, distinct catalytic domain that hydrolyzes (p)ppGpp into pyrophosphate and GDP or GTP. RelMtb is required for chronic M. tuberculosis infection in mice; however, it is unknown which catalytic activity of RelMtb mediates pathogenesis and whether (p)ppGpp itself is necessary. In order to individually investigate the roles of (p)ppGpp synthesis and hydrolysis during M. tuberculosis pathogenesis, we generated RelMtb point mutants that were either synthetase dead (RelMtb(H344Y)) or hydrolase dead (RelMtb(H80A)). M. tuberculosis strains expressing the synthetase-dead RelMtb(H344Y) mutant did not persist in mice, demonstrating that the RelMtb (p)ppGpp synthetase activity is required for maintaining bacterial titers during chronic infection. Deletion of a second predicted (p)ppGpp synthetase had no effect on pathogenesis, demonstrating that RelMtb was the major contributor to (p)ppGpp production during infection. Interestingly, expression of an allele encoding the hydrolase-dead RelMtb mutant, RelMtb(H80A), that is incapable of hydrolyzing (p)ppGpp but still able to synthesize (p)ppGpp decreased the growth rate of M. tuberculosis and changed the colony morphology of the bacteria. In addition, RelMtb(H80A) expression during acute or chronic M. tuberculosis infection in mice was lethal to the infecting bacteria. These findings highlight a distinct role for RelMtb-mediated (p)ppGpp hydrolysis that is essential for M. tuberculosis pathogenesis.
Insights
The stringent response enzyme RelMtb is crucial for Mycobacterium tuberculosis pathogenesis. Its synthesis activity is essential for chronic infection, while its hydrolysis activity is vital for bacterial survival during infection.
Area of Science:
- Microbiology
- Molecular Biology
- Pathogenesis
Background:
- The stringent response in Mycobacterium tuberculosis is mediated by the RelMtb enzyme, which synthesizes (p)ppGpp, influencing metabolic processes.
- RelMtb is essential for chronic M. tuberculosis infection, but its specific catalytic activities (synthesis vs. hydrolysis) in pathogenesis are unknown.
Purpose of the Study:
- To investigate the distinct roles of (p)ppGpp synthesis and hydrolysis by RelMtb in M. tuberculosis pathogenesis.
- To determine if (p)ppGpp itself is necessary for M. tuberculosis infection.
Main Methods:
- Generated RelMtb point mutants: synthetase-dead (RelMtb(H344Y)) and hydrolase-dead (RelMtb(H80A)).
- Assessed bacterial persistence and titers in mouse models of acute and chronic M. tuberculosis infection.
- Evaluated the impact of mutant RelMtb expression on bacterial growth rate and colony morphology.
Main Results:
- M. tuberculosis strains expressing the synthetase-dead RelMtb(H344Y) mutant failed to persist in mice, indicating RelMtb synthesis activity is required for chronic infection.
- RelMtb was confirmed as the major (p)ppGpp producer during infection, as deleting a second synthetase had no effect.
- Expression of the hydrolase-dead RelMtb(H80A) mutant, capable of synthesis but not hydrolysis, decreased bacterial growth and was lethal during infection.
Conclusions:
- RelMtb's (p)ppGpp synthetase activity is essential for maintaining bacterial loads during chronic M. tuberculosis infection.
- RelMtb-mediated (p)ppGpp hydrolysis plays a critical, previously unrecognized role in M. tuberculosis pathogenesis and bacterial survival.
- Targeting RelMtb's hydrolysis function could represent a novel therapeutic strategy against tuberculosis.
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