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Converting a Sulfenic Acid Reductase into a Disulfide Bond Isomerase

Aims: Posttranslational formation of disulfide bonds is essential for the folding of many secreted proteins. Formation of disulfide bonds in a protein with more than two cysteines is inherently fraught with error and can result in incorrect disulfide bond pairing and, consequently, misfolded protein...

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Autores principales: Chatelle, Claire, Kraemer, Stéphanie, Ren, Guoping, Chmura, Hannah, Marechal, Nils, Boyd, Dana, Roggemans, Caroline, Ke, Na, Riggs, Paul, Bardwell, James, Berkmen, Mehmet
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Mary Ann Liebert, Inc. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4624244/
https://www.ncbi.nlm.nih.gov/pubmed/26191605
http://dx.doi.org/10.1089/ars.2014.6235
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author Chatelle, Claire
Kraemer, Stéphanie
Ren, Guoping
Chmura, Hannah
Marechal, Nils
Boyd, Dana
Roggemans, Caroline
Ke, Na
Riggs, Paul
Bardwell, James
Berkmen, Mehmet
author_facet Chatelle, Claire
Kraemer, Stéphanie
Ren, Guoping
Chmura, Hannah
Marechal, Nils
Boyd, Dana
Roggemans, Caroline
Ke, Na
Riggs, Paul
Bardwell, James
Berkmen, Mehmet
author_sort Chatelle, Claire
collection PubMed
description Aims: Posttranslational formation of disulfide bonds is essential for the folding of many secreted proteins. Formation of disulfide bonds in a protein with more than two cysteines is inherently fraught with error and can result in incorrect disulfide bond pairing and, consequently, misfolded protein. Protein disulfide bond isomerases, such as DsbC of Escherichia coli, can recognize mis-oxidized proteins and shuffle the disulfide bonds of the substrate protein into their native folded state. Results: We have developed a simple blue/white screen that can detect disulfide bond isomerization in vivo, using a mutant alkaline phosphatase (PhoA*) in E. coli. We utilized this screen to isolate mutants of the sulfenic acid reductase (DsbG) that allowed this protein to act as a disulfide bond isomerase. Characterization of the isolated mutants in vivo and in vitro allowed us to identify key amino acid residues responsible for oxidoreductase properties of thioredoxin-like proteins such as DsbC or DsbG. Innovation and Conclusions: Using these key residues, we also identified and characterized interesting environmental homologs of DsbG with novel properties, thus demonstrating the capacity of this screen to discover and elucidate mechanistic details of in vivo disulfide bond isomerization. Antioxid. Redox Signal. 23, 945–957.
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spelling pubmed-46242442015-11-05 Converting a Sulfenic Acid Reductase into a Disulfide Bond Isomerase Chatelle, Claire Kraemer, Stéphanie Ren, Guoping Chmura, Hannah Marechal, Nils Boyd, Dana Roggemans, Caroline Ke, Na Riggs, Paul Bardwell, James Berkmen, Mehmet Antioxid Redox Signal Original Research Communications Aims: Posttranslational formation of disulfide bonds is essential for the folding of many secreted proteins. Formation of disulfide bonds in a protein with more than two cysteines is inherently fraught with error and can result in incorrect disulfide bond pairing and, consequently, misfolded protein. Protein disulfide bond isomerases, such as DsbC of Escherichia coli, can recognize mis-oxidized proteins and shuffle the disulfide bonds of the substrate protein into their native folded state. Results: We have developed a simple blue/white screen that can detect disulfide bond isomerization in vivo, using a mutant alkaline phosphatase (PhoA*) in E. coli. We utilized this screen to isolate mutants of the sulfenic acid reductase (DsbG) that allowed this protein to act as a disulfide bond isomerase. Characterization of the isolated mutants in vivo and in vitro allowed us to identify key amino acid residues responsible for oxidoreductase properties of thioredoxin-like proteins such as DsbC or DsbG. Innovation and Conclusions: Using these key residues, we also identified and characterized interesting environmental homologs of DsbG with novel properties, thus demonstrating the capacity of this screen to discover and elucidate mechanistic details of in vivo disulfide bond isomerization. Antioxid. Redox Signal. 23, 945–957. Mary Ann Liebert, Inc. 2015-10-20 /pmc/articles/PMC4624244/ /pubmed/26191605 http://dx.doi.org/10.1089/ars.2014.6235 Text en © Claire Chatelle et al 2015; Published by Mary Ann Liebert, Inc. This Open Access article is distributed under the terms of the Creative Commons Attribution Noncommercial License (http://creativecommons.org/licenses/by-nc/4.0/) which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and the source are credited.
spellingShingle Original Research Communications
Chatelle, Claire
Kraemer, Stéphanie
Ren, Guoping
Chmura, Hannah
Marechal, Nils
Boyd, Dana
Roggemans, Caroline
Ke, Na
Riggs, Paul
Bardwell, James
Berkmen, Mehmet
Converting a Sulfenic Acid Reductase into a Disulfide Bond Isomerase
title Converting a Sulfenic Acid Reductase into a Disulfide Bond Isomerase
title_full Converting a Sulfenic Acid Reductase into a Disulfide Bond Isomerase
title_fullStr Converting a Sulfenic Acid Reductase into a Disulfide Bond Isomerase
title_full_unstemmed Converting a Sulfenic Acid Reductase into a Disulfide Bond Isomerase
title_short Converting a Sulfenic Acid Reductase into a Disulfide Bond Isomerase
title_sort converting a sulfenic acid reductase into a disulfide bond isomerase
topic Original Research Communications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4624244/
https://www.ncbi.nlm.nih.gov/pubmed/26191605
http://dx.doi.org/10.1089/ars.2014.6235
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