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The Role of Chaperone-subunit Usher Domain Interactions in the Mechanism of Bacterial Pilus Biogenesis Revealed by ESI-MS

The PapC usher is a β-barrel outer membrane protein essential for assembly and secretion of P pili that are required for adhesion of pathogenic E. coli, which cause the development of pyelonephritis. Multiple protein subunits form the P pilus, the highly specific assembly of which is coordinated by...

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Autores principales: Morrissey, Bethny, Leney, Aneika C., Toste Rêgo, Ana, Phan, Gilles, Allen, William J., Verger, Denis, Waksman, Gabriel, Ashcroft, Alison E., Radford, Sheena E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Biochemistry and Molecular Biology 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3394950/
https://www.ncbi.nlm.nih.gov/pubmed/22371487
http://dx.doi.org/10.1074/mcp.M111.015289
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author Morrissey, Bethny
Leney, Aneika C.
Toste Rêgo, Ana
Phan, Gilles
Allen, William J.
Verger, Denis
Waksman, Gabriel
Ashcroft, Alison E.
Radford, Sheena E.
author_facet Morrissey, Bethny
Leney, Aneika C.
Toste Rêgo, Ana
Phan, Gilles
Allen, William J.
Verger, Denis
Waksman, Gabriel
Ashcroft, Alison E.
Radford, Sheena E.
author_sort Morrissey, Bethny
collection PubMed
description The PapC usher is a β-barrel outer membrane protein essential for assembly and secretion of P pili that are required for adhesion of pathogenic E. coli, which cause the development of pyelonephritis. Multiple protein subunits form the P pilus, the highly specific assembly of which is coordinated by the usher. Despite a wealth of structural knowledge, how the usher catalyzes subunit polymerization and orchestrates a correct and functional order of subunit assembly remain unclear. Here, the ability of the soluble N-terminal (UsherN), C-terminal (UsherC2), and Plug (UsherP) domains of the usher to bind different chaperone-subunit (PapDPapX) complexes is investigated using noncovalent electrospray ionization mass spectrometry. The results reveal that each usher domain is able to bind all six PapDPapX complexes, consistent with an active role of all three usher domains in pilus biogenesis. Using collision induced dissociation, combined with competition binding experiments and dissection of the adhesin subunit, PapG, into separate pilin and adhesin domains, the results reveal why PapG has a uniquely high affinity for the usher, which is consistent with this subunit always being displayed at the pilus tip. In addition, we show how the different soluble usher domains cooperate to coordinate and control efficient pilus assembly at the usher platform. As well as providing new information about the protein-protein interactions that determine pilus biogenesis, the results highlight the power of noncovalent MS to interrogate biological mechanisms, especially in complex mixtures of species.
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spelling pubmed-33949502012-07-16 The Role of Chaperone-subunit Usher Domain Interactions in the Mechanism of Bacterial Pilus Biogenesis Revealed by ESI-MS Morrissey, Bethny Leney, Aneika C. Toste Rêgo, Ana Phan, Gilles Allen, William J. Verger, Denis Waksman, Gabriel Ashcroft, Alison E. Radford, Sheena E. Mol Cell Proteomics Research The PapC usher is a β-barrel outer membrane protein essential for assembly and secretion of P pili that are required for adhesion of pathogenic E. coli, which cause the development of pyelonephritis. Multiple protein subunits form the P pilus, the highly specific assembly of which is coordinated by the usher. Despite a wealth of structural knowledge, how the usher catalyzes subunit polymerization and orchestrates a correct and functional order of subunit assembly remain unclear. Here, the ability of the soluble N-terminal (UsherN), C-terminal (UsherC2), and Plug (UsherP) domains of the usher to bind different chaperone-subunit (PapDPapX) complexes is investigated using noncovalent electrospray ionization mass spectrometry. The results reveal that each usher domain is able to bind all six PapDPapX complexes, consistent with an active role of all three usher domains in pilus biogenesis. Using collision induced dissociation, combined with competition binding experiments and dissection of the adhesin subunit, PapG, into separate pilin and adhesin domains, the results reveal why PapG has a uniquely high affinity for the usher, which is consistent with this subunit always being displayed at the pilus tip. In addition, we show how the different soluble usher domains cooperate to coordinate and control efficient pilus assembly at the usher platform. As well as providing new information about the protein-protein interactions that determine pilus biogenesis, the results highlight the power of noncovalent MS to interrogate biological mechanisms, especially in complex mixtures of species. The American Society for Biochemistry and Molecular Biology 2012-07 2012-02-27 /pmc/articles/PMC3394950/ /pubmed/22371487 http://dx.doi.org/10.1074/mcp.M111.015289 Text en © 2012 by The American Society for Biochemistry and Molecular Biology, Inc. Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) applies to Author Choice Articles
spellingShingle Research
Morrissey, Bethny
Leney, Aneika C.
Toste Rêgo, Ana
Phan, Gilles
Allen, William J.
Verger, Denis
Waksman, Gabriel
Ashcroft, Alison E.
Radford, Sheena E.
The Role of Chaperone-subunit Usher Domain Interactions in the Mechanism of Bacterial Pilus Biogenesis Revealed by ESI-MS
title The Role of Chaperone-subunit Usher Domain Interactions in the Mechanism of Bacterial Pilus Biogenesis Revealed by ESI-MS
title_full The Role of Chaperone-subunit Usher Domain Interactions in the Mechanism of Bacterial Pilus Biogenesis Revealed by ESI-MS
title_fullStr The Role of Chaperone-subunit Usher Domain Interactions in the Mechanism of Bacterial Pilus Biogenesis Revealed by ESI-MS
title_full_unstemmed The Role of Chaperone-subunit Usher Domain Interactions in the Mechanism of Bacterial Pilus Biogenesis Revealed by ESI-MS
title_short The Role of Chaperone-subunit Usher Domain Interactions in the Mechanism of Bacterial Pilus Biogenesis Revealed by ESI-MS
title_sort role of chaperone-subunit usher domain interactions in the mechanism of bacterial pilus biogenesis revealed by esi-ms
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3394950/
https://www.ncbi.nlm.nih.gov/pubmed/22371487
http://dx.doi.org/10.1074/mcp.M111.015289
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