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A Buried Water Network Modulates the Activity of the Escherichia coli Disulphide Catalyst DsbA

The formation of disulphide bonds is an essential step in the folding of many proteins that enter the secretory pathway; therefore, it is not surprising that eukaryotic and prokaryotic organisms have dedicated enzymatic systems to catalyse this process. In bacteria, one such enzyme is disulphide bon...

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Autores principales: Wang, Geqing, Qin, Jilong, Verderosa, Anthony D., Hor, Lilian, Santos-Martin, Carlos, Paxman, Jason J., Martin, Jennifer L., Totsika, Makrina, Heras, Begoña
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9952396/
https://www.ncbi.nlm.nih.gov/pubmed/36829940
http://dx.doi.org/10.3390/antiox12020380
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author Wang, Geqing
Qin, Jilong
Verderosa, Anthony D.
Hor, Lilian
Santos-Martin, Carlos
Paxman, Jason J.
Martin, Jennifer L.
Totsika, Makrina
Heras, Begoña
author_facet Wang, Geqing
Qin, Jilong
Verderosa, Anthony D.
Hor, Lilian
Santos-Martin, Carlos
Paxman, Jason J.
Martin, Jennifer L.
Totsika, Makrina
Heras, Begoña
author_sort Wang, Geqing
collection PubMed
description The formation of disulphide bonds is an essential step in the folding of many proteins that enter the secretory pathway; therefore, it is not surprising that eukaryotic and prokaryotic organisms have dedicated enzymatic systems to catalyse this process. In bacteria, one such enzyme is disulphide bond-forming protein A (DsbA), a thioredoxin-like thiol oxidase that catalyses the oxidative folding of proteins required for virulence and fitness. A large body of work on DsbA proteins, particularly Escherichia coli DsbA (EcDsbA), has demonstrated the key role that the Cys(30)-XX-Cys(33) catalytic motif and its unique redox properties play in the thiol oxidase activity of this enzyme. Using mutational and functional analyses, here we identify that a set of charged residues, which form an acidic groove on the non-catalytic face of the enzyme, further modulate the activity of EcDsbA. Our high-resolution structures indicate that these residues form a water-mediated proton wire that can transfer protons from the bulk solvent to the active site. Our results support the view that proton shuffling may facilitate the stabilisation of the buried Cys(33) thiolate formed during the redox reaction and promote the correct direction of the EcDsbA–substrate thiol–disulphide exchange. Comparison with other proteins of the same class and proteins of the thioredoxin-superfamily in general suggest that a proton relay system appears to be a conserved catalytic feature among this widespread superfamily of proteins. Furthermore, this study also indicates that the acidic groove of DsbA could be a promising allosteric site to develop novel DsbA inhibitors as antibacterial therapeutics.
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spelling pubmed-99523962023-02-25 A Buried Water Network Modulates the Activity of the Escherichia coli Disulphide Catalyst DsbA Wang, Geqing Qin, Jilong Verderosa, Anthony D. Hor, Lilian Santos-Martin, Carlos Paxman, Jason J. Martin, Jennifer L. Totsika, Makrina Heras, Begoña Antioxidants (Basel) Article The formation of disulphide bonds is an essential step in the folding of many proteins that enter the secretory pathway; therefore, it is not surprising that eukaryotic and prokaryotic organisms have dedicated enzymatic systems to catalyse this process. In bacteria, one such enzyme is disulphide bond-forming protein A (DsbA), a thioredoxin-like thiol oxidase that catalyses the oxidative folding of proteins required for virulence and fitness. A large body of work on DsbA proteins, particularly Escherichia coli DsbA (EcDsbA), has demonstrated the key role that the Cys(30)-XX-Cys(33) catalytic motif and its unique redox properties play in the thiol oxidase activity of this enzyme. Using mutational and functional analyses, here we identify that a set of charged residues, which form an acidic groove on the non-catalytic face of the enzyme, further modulate the activity of EcDsbA. Our high-resolution structures indicate that these residues form a water-mediated proton wire that can transfer protons from the bulk solvent to the active site. Our results support the view that proton shuffling may facilitate the stabilisation of the buried Cys(33) thiolate formed during the redox reaction and promote the correct direction of the EcDsbA–substrate thiol–disulphide exchange. Comparison with other proteins of the same class and proteins of the thioredoxin-superfamily in general suggest that a proton relay system appears to be a conserved catalytic feature among this widespread superfamily of proteins. Furthermore, this study also indicates that the acidic groove of DsbA could be a promising allosteric site to develop novel DsbA inhibitors as antibacterial therapeutics. MDPI 2023-02-04 /pmc/articles/PMC9952396/ /pubmed/36829940 http://dx.doi.org/10.3390/antiox12020380 Text en © 2023 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
Wang, Geqing
Qin, Jilong
Verderosa, Anthony D.
Hor, Lilian
Santos-Martin, Carlos
Paxman, Jason J.
Martin, Jennifer L.
Totsika, Makrina
Heras, Begoña
A Buried Water Network Modulates the Activity of the Escherichia coli Disulphide Catalyst DsbA
title A Buried Water Network Modulates the Activity of the Escherichia coli Disulphide Catalyst DsbA
title_full A Buried Water Network Modulates the Activity of the Escherichia coli Disulphide Catalyst DsbA
title_fullStr A Buried Water Network Modulates the Activity of the Escherichia coli Disulphide Catalyst DsbA
title_full_unstemmed A Buried Water Network Modulates the Activity of the Escherichia coli Disulphide Catalyst DsbA
title_short A Buried Water Network Modulates the Activity of the Escherichia coli Disulphide Catalyst DsbA
title_sort buried water network modulates the activity of the escherichia coli disulphide catalyst dsba
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9952396/
https://www.ncbi.nlm.nih.gov/pubmed/36829940
http://dx.doi.org/10.3390/antiox12020380
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