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A Purification and In Vitro Activity Assay for a (p)ppGpp Synthetase from Clostridium difficile
Published on: November 3, 2018
The two PPX-GppA homologues from Mycobacterium tuberculosis have distinct biochemical activities
Mei Y Choi1, Ying Wang, Leo L Y Wong
1Oral Biosciences, Faculty of Dentistry, The University of Hong Kong, Prince Philip Dental Hospital, Sai Ying Pun, Hong Kong SAR, China.
Abstract:
Inorganic polyphosphate (poly-P), guanosine pentaphosphate (pppGpp) and guanosine tetraphosphate (ppGpp) are ubiquitous in bacteria. These molecules play a variety of important physiological roles associated with stress resistance, persistence, and virulence. In the bacterial pathogen Mycobacterium tuberculosis, the identities of the proteins responsible for the metabolism of polyphosphate and (p)ppGpp remain to be fully established. M. tuberculosis encodes two PPX-GppA homologues, Rv0496 (MTB-PPX1) and Rv1026, which share significant sequence similarity with bacterial exopolyphosphatase (PPX) and guanosine pentaphosphate 5'-phosphohydrolase (GPP) proteins. Here we delineate the respective biochemical activities of the Rv0496 and Rv1026 proteins and benchmark these against the activities of the PPX and GPP proteins from Escherichia coli. We demonstrate that Rv0496 functions as an exopolyphosphatase, showing a distinct preference for relatively short-chain poly-P substrates. In contrast, Rv1026 has no detectable exopolyphosphatase activities. Analogous to the E. coli PPX and GPP enzymes, the exopolyphosphatase activities of Rv0496 are inhibited by pppGpp and, to a lesser extent, by ppGpp alarmones, which are produced during the bacterial stringent response. However, neither Rv0496 nor Rv1026 have the ability to hydrolyze pppGpp to ppGpp; a reaction catalyzed by E. coli PPX and GPP. Both the Rv0496 and Rv1026 proteins have modest ATPase and to a lesser extent ADPase activities. pppGpp alarmones inhibit the ATPase activities of Rv1026 and, to a lesser extent, the ATPase activities of Rv0496. We conclude that PPX-GppA family proteins may not possess all the catalytic activities implied by their name and may play distinct biochemical roles involved in polyphosphate and (p)ppGpp metabolic pathways.
Insights
Mycobacterium tuberculosis Rv0496 acts as an exopolyphosphatase, while Rv1026 shows no such activity. Neither protein hydrolyzes alarmones like E. coli homologs, suggesting distinct roles in bacterial metabolism.
Area of Science:
- Bacteriology
- Molecular Biology
- Biochemistry
Background:
- Inorganic polyphosphate (poly-P) and alarmones like guanosine pentaphosphate (pppGpp) and guanosine tetraphosphate (ppGpp) are crucial for bacterial stress response, persistence, and virulence.
- The specific enzymes metabolizing poly-P and (p)ppGpp in Mycobacterium tuberculosis are not fully identified.
Purpose of the Study:
- To biochemically characterize the M. tuberculosis Rv0496 and Rv1026 proteins, which are homologous to bacterial exopolyphosphatase (PPX) and guanosine pentaphosphate 5'-phosphohydrolase (GPP).
- To compare their activities with characterized PPX and GPP enzymes from Escherichia coli.
Main Methods:
- Enzyme activity assays were performed to determine the substrate specificity and kinetic properties of Rv0496 and Rv1026.
- Inhibition studies using pppGpp and ppGpp alarmones were conducted.
- ATPase and ADPase activities were also assessed.
Main Results:
- Rv0496 demonstrated exopolyphosphatase activity, preferring shorter poly-P chains, while Rv1026 showed no detectable exopolyphosphatase activity.
- Unlike E. coli enzymes, neither Rv0496 nor Rv1026 could hydrolyze pppGpp to ppGpp.
- Both proteins exhibited modest ATPase and ADPase activities, with pppGpp inhibiting Rv1026's ATPase activity more significantly than Rv0496's.
Conclusions:
- The PPX-GppA family proteins in M. tuberculosis, Rv0496 and Rv1026, possess distinct biochemical functions.
- These proteins may not exhibit all the catalytic activities typically associated with their homologs, indicating specialized roles in polyphosphate and alarmone metabolism.
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