4.6 Article

Mycothiol/Mycoredoxin 1-dependent Reduction of the Peroxiredoxin AhpE from Mycobacterium tuberculosis*

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 289, 期 8, 页码 5228-5239

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ELSEVIER
DOI: 10.1074/jbc.M113.510248

关键词

Hydrogen Peroxide; Mycobacterium tuberculosis; Peroxiredoxin; Redox Signaling; Thiol; Mycoredoxin; Mycothiol

资金

  1. National Institutes of Health (NIH)
  2. Universidad de la Republica
  3. agentschap voor innovatie door Wetenschap en technologie (IWT)
  4. Vlaams Instituut voor Biotechnologie (VIB)
  5. FWO [G.0305.12]
  6. Agencia Nacional de Investigacion e Innovacion (ANII, Uruguay) [FCE_2011_1_5706]
  7. EMBO [439-2011]
  8. ANII
  9. IWT

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Background: Mycothiol, the major low-molecular weight thiol of Mycobacterium tuberculosis, is important for peroxide detoxification and virulence. Results: Mycothiol, together with mycoredoxin-1, a glutaredoxin-like protein, reduces the one-cysteine peroxiredoxin AhpE from the bacterium. Conclusion:Mycobacterium tuberculosis AhpE is a mycothiol/mycoredoxin-1-dependent peroxidase. Significance: Our results provide the first molecular link between a thiol-dependent peroxidase and the mycothiol/mycoredoxin-1 pathway in Mycobacteria. Mycobacterium tuberculosis (M. tuberculosis), the pathogen responsible for tuberculosis, detoxifies cytotoxic peroxides produced by activated macrophages. M. tuberculosis expresses alkyl hydroxyperoxide reductase E (AhpE), among other peroxiredoxins. So far the system that reduces AhpE was not known. We identified M. tuberculosis mycoredoxin-1 (MtMrx1) acting in combination with mycothiol and mycothiol disulfide reductase (MR), as a biologically relevant reducing system for MtAhpE. MtMrx1, a glutaredoxin-like, mycothiol-dependent oxidoreductase, directly reduces the oxidized form of MtAhpE, through a protein mixed disulfide with the N-terminal cysteine of MtMrx1 and the sulfenic acid derivative of the peroxidatic cysteine of MtAhpE. This disulfide is then reduced by the C-terminal cysteine in MtMrx1. Accordingly, MtAhpE catalyzes the oxidation of wt MtMrx1 by hydrogen peroxide but not of MtMrx1 lacking the C-terminal cysteine, confirming a dithiolic mechanism. Alternatively, oxidized MtAhpE forms a mixed disulfide with mycothiol, which in turn is reduced by MtMrx1 using a monothiolic mechanism. We demonstrated the H2O2-dependent NADPH oxidation catalyzed by MtAhpE in the presence of MR, Mrx1, and mycothiol. Disulfide formation involving mycothiol probably competes with the direct reduction by MtMrx1 in aqueous intracellular media, where mycothiol is present at millimolar concentrations. However, MtAhpE was found to be associated with the membrane fraction, and since mycothiol is hydrophilic, direct reduction by MtMrx1 might be favored. The results reported herein allow the rationalization of peroxide detoxification actions inferred for mycothiol, and more recently, for Mrx1 in cellular systems. We report the first molecular link between a thiol-dependent peroxidase and the mycothiol/Mrx1 pathway in Mycobacteria.

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