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Characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone

Escherichia coli is a Gram‐negative bacterium that can use nitrate during anaerobic respiration. The catalytic subunit of the periplasmic nitrate reductase NapA contains two types of redox cofactor and is exported across the cytoplasmic membrane by the twin‐arginine protein transport pathway. NapD i...

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Autores principales: Dow, Jennifer M., Grahl, Sabine, Ward, Richard, Evans, Rachael, Byron, Olwyn, Norman, David G., Palmer, Tracy, Sargent, Frank
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Published by Blackwell Pub. on behalf of the Federation of European Biochemical Societies 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4159696/
https://www.ncbi.nlm.nih.gov/pubmed/24314029
http://dx.doi.org/10.1111/febs.12592
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author Dow, Jennifer M.
Grahl, Sabine
Ward, Richard
Evans, Rachael
Byron, Olwyn
Norman, David G.
Palmer, Tracy
Sargent, Frank
author_facet Dow, Jennifer M.
Grahl, Sabine
Ward, Richard
Evans, Rachael
Byron, Olwyn
Norman, David G.
Palmer, Tracy
Sargent, Frank
author_sort Dow, Jennifer M.
collection PubMed
description Escherichia coli is a Gram‐negative bacterium that can use nitrate during anaerobic respiration. The catalytic subunit of the periplasmic nitrate reductase NapA contains two types of redox cofactor and is exported across the cytoplasmic membrane by the twin‐arginine protein transport pathway. NapD is a small cytoplasmic protein that is essential for the activity of the periplasmic nitrate reductase and binds tightly to the twin‐arginine signal peptide of NapA. Here we show, using spin labelling and EPR, that the isolated twin‐arginine signal peptide of NapA is structured in its unbound form and undergoes a small but significant conformational change upon interaction with NapD. In addition, a complex comprising the full‐length NapA protein and NapD could be isolated by engineering an affinity tag onto NapD only. Analytical ultracentrifugation demonstrated that the two proteins in the NapDA complex were present in a 1 : 1 molar ratio, and small angle X‐ray scattering analysis of the complex indicated that NapA was at least partially folded when bound by its NapD partner. A NapDA complex could not be isolated in the absence of the NapA Tat signal peptide. Taken together, this work indicates that the NapD chaperone binds primarily at the NapA signal peptide in this system and points towards a role for NapD in the insertion of the molybdenum cofactor. STRUCTURED DIGITAL ABSTRACT: NapD and NapA bind by x ray scattering (View interaction). NapA and NapD physically interact by molecular sieving (View interaction). NapA and NapD bind by electron paramagnetic resonance (View interaction);
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spelling pubmed-41596962014-09-22 Characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone Dow, Jennifer M. Grahl, Sabine Ward, Richard Evans, Rachael Byron, Olwyn Norman, David G. Palmer, Tracy Sargent, Frank FEBS J Original Articles Escherichia coli is a Gram‐negative bacterium that can use nitrate during anaerobic respiration. The catalytic subunit of the periplasmic nitrate reductase NapA contains two types of redox cofactor and is exported across the cytoplasmic membrane by the twin‐arginine protein transport pathway. NapD is a small cytoplasmic protein that is essential for the activity of the periplasmic nitrate reductase and binds tightly to the twin‐arginine signal peptide of NapA. Here we show, using spin labelling and EPR, that the isolated twin‐arginine signal peptide of NapA is structured in its unbound form and undergoes a small but significant conformational change upon interaction with NapD. In addition, a complex comprising the full‐length NapA protein and NapD could be isolated by engineering an affinity tag onto NapD only. Analytical ultracentrifugation demonstrated that the two proteins in the NapDA complex were present in a 1 : 1 molar ratio, and small angle X‐ray scattering analysis of the complex indicated that NapA was at least partially folded when bound by its NapD partner. A NapDA complex could not be isolated in the absence of the NapA Tat signal peptide. Taken together, this work indicates that the NapD chaperone binds primarily at the NapA signal peptide in this system and points towards a role for NapD in the insertion of the molybdenum cofactor. STRUCTURED DIGITAL ABSTRACT: NapD and NapA bind by x ray scattering (View interaction). NapA and NapD physically interact by molecular sieving (View interaction). NapA and NapD bind by electron paramagnetic resonance (View interaction); Published by Blackwell Pub. on behalf of the Federation of European Biochemical Societies 2013-12-09 2014-01 /pmc/articles/PMC4159696/ /pubmed/24314029 http://dx.doi.org/10.1111/febs.12592 Text en © 2013 The Authors. FEBS Journal published by John Wiley & Sons Ltd on behalf of FEBS This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/3.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Dow, Jennifer M.
Grahl, Sabine
Ward, Richard
Evans, Rachael
Byron, Olwyn
Norman, David G.
Palmer, Tracy
Sargent, Frank
Characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone
title Characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone
title_full Characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone
title_fullStr Characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone
title_full_unstemmed Characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone
title_short Characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone
title_sort characterization of a periplasmic nitrate reductase in complex with its biosynthetic chaperone
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4159696/
https://www.ncbi.nlm.nih.gov/pubmed/24314029
http://dx.doi.org/10.1111/febs.12592
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