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Diversity of Plant Methionine Sulfoxide Reductases B and Evolution of a Form Specific for Free Methionine Sulfoxide

Methionine can be reversibly oxidized to methionine sulfoxide (MetO) under physiological conditions. Organisms evolved two distinct methionine sulfoxide reductase families (MSRA & MSRB) to repair oxidized methionine residues. We found that 5 MSRB genes exist in the soybean genome, including GmMS...

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Autores principales: Le, Dung Tien, Tarrago, Lionel, Watanabe, Yasuko, Kaya, Alaattin, Lee, Byung Cheon, Tran, Uyen, Nishiyama, Rie, Fomenko, Dmitri E., Gladyshev, Vadim N., Tran, Lam-Son Phan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3680461/
https://www.ncbi.nlm.nih.gov/pubmed/23776515
http://dx.doi.org/10.1371/journal.pone.0065637
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author Le, Dung Tien
Tarrago, Lionel
Watanabe, Yasuko
Kaya, Alaattin
Lee, Byung Cheon
Tran, Uyen
Nishiyama, Rie
Fomenko, Dmitri E.
Gladyshev, Vadim N.
Tran, Lam-Son Phan
author_facet Le, Dung Tien
Tarrago, Lionel
Watanabe, Yasuko
Kaya, Alaattin
Lee, Byung Cheon
Tran, Uyen
Nishiyama, Rie
Fomenko, Dmitri E.
Gladyshev, Vadim N.
Tran, Lam-Son Phan
author_sort Le, Dung Tien
collection PubMed
description Methionine can be reversibly oxidized to methionine sulfoxide (MetO) under physiological conditions. Organisms evolved two distinct methionine sulfoxide reductase families (MSRA & MSRB) to repair oxidized methionine residues. We found that 5 MSRB genes exist in the soybean genome, including GmMSRB1 and two segmentally duplicated gene pairs (GmMSRB2 and GmMSRB5, GmMSRB3 and GmMSRB4). GmMSRB2 and GmMSRB4 proteins showed MSRB activity toward protein-based MetO with either DTT or thioredoxin (TRX) as reductants, whereas GmMSRB1 was active only with DTT. GmMSRB2 had a typical MSRB mechanism with Cys121 and Cys 68 as catalytic and resolving residues, respectively. Surprisingly, this enzyme also possessed the MSRB activity toward free Met-R-O with kinetic parameters similar to those reported for fRMSR from Escherichia coli, an enzyme specific for free Met-R-O. Overexpression of GmMSRB2 or GmMSRB4 in the yeast cytosol supported the growth of the triple MSRA/MSRB/fRMSR (Δ3MSRs) mutant on MetO and protected cells against H(2)O(2)-induced stress. Taken together, our data reveal an unexpected diversity of MSRBs in plants and indicate that, in contrast to mammals that cannot reduce free Met-R-O and microorganisms that use fRMSR for this purpose, plants evolved MSRBs for the reduction of both free and protein-based MetO.
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spelling pubmed-36804612013-06-17 Diversity of Plant Methionine Sulfoxide Reductases B and Evolution of a Form Specific for Free Methionine Sulfoxide Le, Dung Tien Tarrago, Lionel Watanabe, Yasuko Kaya, Alaattin Lee, Byung Cheon Tran, Uyen Nishiyama, Rie Fomenko, Dmitri E. Gladyshev, Vadim N. Tran, Lam-Son Phan PLoS One Research Article Methionine can be reversibly oxidized to methionine sulfoxide (MetO) under physiological conditions. Organisms evolved two distinct methionine sulfoxide reductase families (MSRA & MSRB) to repair oxidized methionine residues. We found that 5 MSRB genes exist in the soybean genome, including GmMSRB1 and two segmentally duplicated gene pairs (GmMSRB2 and GmMSRB5, GmMSRB3 and GmMSRB4). GmMSRB2 and GmMSRB4 proteins showed MSRB activity toward protein-based MetO with either DTT or thioredoxin (TRX) as reductants, whereas GmMSRB1 was active only with DTT. GmMSRB2 had a typical MSRB mechanism with Cys121 and Cys 68 as catalytic and resolving residues, respectively. Surprisingly, this enzyme also possessed the MSRB activity toward free Met-R-O with kinetic parameters similar to those reported for fRMSR from Escherichia coli, an enzyme specific for free Met-R-O. Overexpression of GmMSRB2 or GmMSRB4 in the yeast cytosol supported the growth of the triple MSRA/MSRB/fRMSR (Δ3MSRs) mutant on MetO and protected cells against H(2)O(2)-induced stress. Taken together, our data reveal an unexpected diversity of MSRBs in plants and indicate that, in contrast to mammals that cannot reduce free Met-R-O and microorganisms that use fRMSR for this purpose, plants evolved MSRBs for the reduction of both free and protein-based MetO. Public Library of Science 2013-06-12 /pmc/articles/PMC3680461/ /pubmed/23776515 http://dx.doi.org/10.1371/journal.pone.0065637 Text en © 2013 Le et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Le, Dung Tien
Tarrago, Lionel
Watanabe, Yasuko
Kaya, Alaattin
Lee, Byung Cheon
Tran, Uyen
Nishiyama, Rie
Fomenko, Dmitri E.
Gladyshev, Vadim N.
Tran, Lam-Son Phan
Diversity of Plant Methionine Sulfoxide Reductases B and Evolution of a Form Specific for Free Methionine Sulfoxide
title Diversity of Plant Methionine Sulfoxide Reductases B and Evolution of a Form Specific for Free Methionine Sulfoxide
title_full Diversity of Plant Methionine Sulfoxide Reductases B and Evolution of a Form Specific for Free Methionine Sulfoxide
title_fullStr Diversity of Plant Methionine Sulfoxide Reductases B and Evolution of a Form Specific for Free Methionine Sulfoxide
title_full_unstemmed Diversity of Plant Methionine Sulfoxide Reductases B and Evolution of a Form Specific for Free Methionine Sulfoxide
title_short Diversity of Plant Methionine Sulfoxide Reductases B and Evolution of a Form Specific for Free Methionine Sulfoxide
title_sort diversity of plant methionine sulfoxide reductases b and evolution of a form specific for free methionine sulfoxide
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3680461/
https://www.ncbi.nlm.nih.gov/pubmed/23776515
http://dx.doi.org/10.1371/journal.pone.0065637
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