Inositol monophosphate phosphatase genes of Mycobacterium tuberculosis
Farahnaz Movahedzadeh1, Paul R Wheeler, Premkumar Dinadayala
1Department of Pathology and Infectious Diseases, Royal Veterinary College, Royal College Street, London NW1 0TU, UK. movahed@uic.edu
Background:
Mycobacteria use inositol in phosphatidylinositol, for anchoring lipoarabinomannan (LAM), lipomannan (LM) and phosphatidylinosotol mannosides (PIMs) in the cell envelope, and for the production of mycothiol, which maintains the redox balance of the cell. Inositol is synthesized by conversion of glucose-6-phosphate to inositol-1-phosphate, followed by dephosphorylation by inositol monophosphate phosphatases (IMPases) to form myo-inositol. To gain insight into how Mycobacterium tuberculosis synthesises inositol we carried out genetic analysis of the four IMPase homologues that are present in the Mycobacterium tuberculosis genome.
Results:
Mutants lacking either impA (Rv1604) or suhB (Rv2701c) were isolated in the absence of exogenous inositol, and no differences in levels of PIMs, LM, LAM or mycothiol were observed. Mutagenesis of cysQ (Rv2131c) was initially unsuccessful, but was possible when a porin-like gene of Mycobacterium smegmatis was expressed, and also by gene switching in the merodiploid strain. In contrast, we could only obtain mutations in impC (Rv3137) when a second functional copy was provided in trans, even when exogenous inositol was provided. Experiments to obtain a mutant in the presence of a second copy of impC containing an active-site mutation, in the presence of porin-like gene of M. smegmatis, or in the absence of inositol 1-phosphate synthase activity, were also unsuccessful. We showed that all four genes are expressed, although at different levels, and levels of inositol phosphatase activity did not fall significantly in any of the mutants obtained.
Conclusions:
We have shown that neither impA, suhB nor cysQ is solely responsible for inositol synthesis. In contrast, we show that impC is essential for mycobacterial growth under the conditions we used, and suggest it may be required in the early stages of mycothiol synthesis.
Insights
Mycobacterium tuberculosis synthesizes inositol using four inositol monophosphate phosphatase (IMPase) homologues. The study found that impC is essential for mycobacterial growth, likely in early mycothiol synthesis.
Area of Science:
- Microbiology
- Biochemistry
Background:
- Mycobacteria utilize inositol for cell envelope components like lipoarabinomannan (LAM) and for producing mycothiol, crucial for redox balance.
- Inositol synthesis involves glucose-6-phosphate conversion to inositol-1-phosphate, followed by dephosphorylation by inositol monophosphate phosphatases (IMPases).
Purpose of the Study:
- To investigate the genetic basis of inositol synthesis in Mycobacterium tuberculosis.
- To identify the specific IMPase homologues involved in mycobacterial inositol production.
Main Methods:
- Genetic analysis of four IMPase homologues (impA, suhB, cysQ, impC) in Mycobacterium tuberculosis.
- Construction and characterization of gene mutants, including conditional mutants and expression of heterologous genes.
Main Results:
- Mutants lacking impA or suhB grew without exogenous inositol, showing no changes in key cell envelope components or mycothiol.
- Mutagenesis of cysQ was challenging but achievable with M. smegmatis porin expression.
- Mutations in impC were only obtained when a second functional copy was provided, indicating its essential role.
Conclusions:
- The IMPase homologues impA, suhB, and cysQ are not solely responsible for inositol synthesis in M. tuberculosis.
- The gene impC is essential for mycobacterial growth under tested conditions and is likely involved in early stages of mycothiol synthesis.
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