Literature DB >> 18809403

Leishmania infantum: provision of reducing equivalents to the mitochondrial tryparedoxin/tryparedoxin peroxidase system.

Helena Castro1, Susana Romao, Fernanda R Gadelha, Ana M Tomás.   

Abstract

Within the mitochondrion of Leishmania infantum, hydroperoxide metabolism relies on the activity of tryparedoxin-dependent peroxidases (TXNPxs). Tryparedoxins (TXNs) are thioredoxin-related oxidoreductases, which in vitro are reduced by the trypanothione reductase/trypanothione [TR/T(SH)(2)] redox couple. Still, there is no evidence that this actually occurs in the mitochondrion. This communication addresses the question of how the mitochondrial TXN/TXNPx system is reduced. First, using a digitonin fractionation assay, we show that TR activity is absent from the L. infantum mitochondrion. The possibility that this organelle possesses alternative electron sources for TXN/TXNPx is then investigated. Biochemical assays performed with purified recombinant enzymes, revealed that TR and T(SH)(2) can be replaced, albeit less efficiently, by the dihydrolipoamide dehydrogenase/lipoamide redox system as TXN/TXNPx electron donor. This result challenges the classical view that T(SH)(2) is the only reductant for TXNs and add new prospects regarding the involvement of 2-oxo acid dehydrogenase complexes in L. infantum mitochondrial hydroperoxide metabolism.

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Year:  2008        PMID: 18809403     DOI: 10.1016/j.exppara.2008.09.002

Source DB:  PubMed          Journal:  Exp Parasitol        ISSN: 0014-4894            Impact factor:   2.011


  7 in total

Review 1.  Peroxiredoxins in parasites.

Authors:  Michael C Gretes; Leslie B Poole; P Andrew Karplus
Journal:  Antioxid Redox Signal       Date:  2012-01-25       Impact factor: 8.401

Review 2.  Redox metabolism in mitochondria of trypanosomatids.

Authors:  Ana M Tomás; Helena Castro
Journal:  Antioxid Redox Signal       Date:  2012-11-15       Impact factor: 8.401

3.  Identification of proteins in promastigote and amastigote-like Leishmania using an immunoproteomic approach.

Authors:  Vinicio T S Coelho; Jamil S Oliveira; Diogo G Valadares; Miguel A Chávez-Fumagalli; Mariana C Duarte; Paula S Lage; Manuel Soto; Marcelo M Santoro; Carlos A P Tavares; Ana Paula Fernandes; Eduardo A F Coelho
Journal:  PLoS Negl Trop Dis       Date:  2012-01-17

4.  A tryparedoxin-coupled biosensor reveals a mitochondrial trypanothione metabolism in trypanosomes.

Authors:  Samantha Ebersoll; Marta Bogacz; Lina M Günter; Tobias P Dick; R Luise Krauth-Siegel
Journal:  Elife       Date:  2020-01-31       Impact factor: 8.140

5.  The mitochondrial peroxiredoxin displays distinct roles in different developmental stages of African trypanosomes.

Authors:  Marta Bogacz; Natalie Dirdjaja; Benedikt Wimmer; Carina Habich; R Luise Krauth-Siegel
Journal:  Redox Biol       Date:  2020-04-29       Impact factor: 11.799

Review 6.  Global distribution of treatment resistance gene markers for leishmaniasis.

Authors:  Samira Salari; Mehdi Bamorovat; Iraj Sharifi; Pooya Ghasemi Nejad Almani
Journal:  J Clin Lab Anal       Date:  2022-07-09       Impact factor: 3.124

7.  Identification and functional characterization of Leishmania donovani secretory peroxidase: delineating its role in NRAMP1 regulation.

Authors:  Nisha Singh; Surabhi Bajpai; Vinod Kumar; Jalaj K Gour; Rakesh K Singh
Journal:  PLoS One       Date:  2013-01-11       Impact factor: 3.240

  7 in total

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