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Initial Step of Selenite Reduction via Thioredoxin for Bacterial Selenoprotein Biosynthesis

Many organisms reductively assimilate selenite to synthesize selenoprotein. Although the thioredoxin system, consisting of thioredoxin 1 (TrxA) and thioredoxin reductase with NADPH, can reduce selenite and is considered to facilitate selenite assimilation, the detailed mechanism remains obscure. Her...

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Autores principales: Shimizu, Atsuki, Tobe, Ryuta, Aono, Riku, Inoue, Masao, Hagita, Satoru, Kiriyama, Kaito, Toyotake, Yosuke, Ogawa, Takuya, Kurihara, Tatsuo, Goto, Kei, Prakash, N. Tejo, Mihara, Hisaaki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8538045/
https://www.ncbi.nlm.nih.gov/pubmed/34681630
http://dx.doi.org/10.3390/ijms222010965
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author Shimizu, Atsuki
Tobe, Ryuta
Aono, Riku
Inoue, Masao
Hagita, Satoru
Kiriyama, Kaito
Toyotake, Yosuke
Ogawa, Takuya
Kurihara, Tatsuo
Goto, Kei
Prakash, N. Tejo
Mihara, Hisaaki
author_facet Shimizu, Atsuki
Tobe, Ryuta
Aono, Riku
Inoue, Masao
Hagita, Satoru
Kiriyama, Kaito
Toyotake, Yosuke
Ogawa, Takuya
Kurihara, Tatsuo
Goto, Kei
Prakash, N. Tejo
Mihara, Hisaaki
author_sort Shimizu, Atsuki
collection PubMed
description Many organisms reductively assimilate selenite to synthesize selenoprotein. Although the thioredoxin system, consisting of thioredoxin 1 (TrxA) and thioredoxin reductase with NADPH, can reduce selenite and is considered to facilitate selenite assimilation, the detailed mechanism remains obscure. Here, we show that selenite was reduced by the thioredoxin system from Pseudomonas stutzeri only in the presence of the TrxA (PsTrxA), and this system was specific to selenite among the oxyanions examined. Mutational analysis revealed that Cys33 and Cys36 residues in PsTrxA are important for selenite reduction. Free thiol-labeling assays suggested that Cys33 is more reactive than Cys36. Mass spectrometry analysis suggested that PsTrxA reduces selenite via PsTrxA-SeO intermediate formation. Furthermore, an in vivo formate dehydrogenase activity assay in Escherichia coli with a gene disruption suggested that TrxA is important for selenoprotein biosynthesis. The introduction of PsTrxA complemented the effects of TrxA disruption in E. coli cells, only when PsTrxA contained Cys33 and Cys36. Based on these results, we proposed the early steps of the link between selenite and selenoprotein biosynthesis via the formation of TrxA–selenium complexes.
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spelling pubmed-85380452021-10-24 Initial Step of Selenite Reduction via Thioredoxin for Bacterial Selenoprotein Biosynthesis Shimizu, Atsuki Tobe, Ryuta Aono, Riku Inoue, Masao Hagita, Satoru Kiriyama, Kaito Toyotake, Yosuke Ogawa, Takuya Kurihara, Tatsuo Goto, Kei Prakash, N. Tejo Mihara, Hisaaki Int J Mol Sci Article Many organisms reductively assimilate selenite to synthesize selenoprotein. Although the thioredoxin system, consisting of thioredoxin 1 (TrxA) and thioredoxin reductase with NADPH, can reduce selenite and is considered to facilitate selenite assimilation, the detailed mechanism remains obscure. Here, we show that selenite was reduced by the thioredoxin system from Pseudomonas stutzeri only in the presence of the TrxA (PsTrxA), and this system was specific to selenite among the oxyanions examined. Mutational analysis revealed that Cys33 and Cys36 residues in PsTrxA are important for selenite reduction. Free thiol-labeling assays suggested that Cys33 is more reactive than Cys36. Mass spectrometry analysis suggested that PsTrxA reduces selenite via PsTrxA-SeO intermediate formation. Furthermore, an in vivo formate dehydrogenase activity assay in Escherichia coli with a gene disruption suggested that TrxA is important for selenoprotein biosynthesis. The introduction of PsTrxA complemented the effects of TrxA disruption in E. coli cells, only when PsTrxA contained Cys33 and Cys36. Based on these results, we proposed the early steps of the link between selenite and selenoprotein biosynthesis via the formation of TrxA–selenium complexes. MDPI 2021-10-11 /pmc/articles/PMC8538045/ /pubmed/34681630 http://dx.doi.org/10.3390/ijms222010965 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shimizu, Atsuki
Tobe, Ryuta
Aono, Riku
Inoue, Masao
Hagita, Satoru
Kiriyama, Kaito
Toyotake, Yosuke
Ogawa, Takuya
Kurihara, Tatsuo
Goto, Kei
Prakash, N. Tejo
Mihara, Hisaaki
Initial Step of Selenite Reduction via Thioredoxin for Bacterial Selenoprotein Biosynthesis
title Initial Step of Selenite Reduction via Thioredoxin for Bacterial Selenoprotein Biosynthesis
title_full Initial Step of Selenite Reduction via Thioredoxin for Bacterial Selenoprotein Biosynthesis
title_fullStr Initial Step of Selenite Reduction via Thioredoxin for Bacterial Selenoprotein Biosynthesis
title_full_unstemmed Initial Step of Selenite Reduction via Thioredoxin for Bacterial Selenoprotein Biosynthesis
title_short Initial Step of Selenite Reduction via Thioredoxin for Bacterial Selenoprotein Biosynthesis
title_sort initial step of selenite reduction via thioredoxin for bacterial selenoprotein biosynthesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8538045/
https://www.ncbi.nlm.nih.gov/pubmed/34681630
http://dx.doi.org/10.3390/ijms222010965
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