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The pH Dependence of Polymerization and Bundling by the Essential Bacterial Cytoskeltal Protein FtsZ

There is a growing body of evidence that bacterial cell division is an intricate coordinated process of comparable complexity to that seen in eukaryotic cells. The dynamic assembly of Escherichia coli FtsZ in the presence of GTP is fundamental to its activity. FtsZ polymerization is a very attractiv...

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Autores principales: Pacheco-Gómez, Raúl, Roper, David I., Dafforn, Timothy R., Rodger, Alison
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3125165/
https://www.ncbi.nlm.nih.gov/pubmed/21738567
http://dx.doi.org/10.1371/journal.pone.0019369
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author Pacheco-Gómez, Raúl
Roper, David I.
Dafforn, Timothy R.
Rodger, Alison
author_facet Pacheco-Gómez, Raúl
Roper, David I.
Dafforn, Timothy R.
Rodger, Alison
author_sort Pacheco-Gómez, Raúl
collection PubMed
description There is a growing body of evidence that bacterial cell division is an intricate coordinated process of comparable complexity to that seen in eukaryotic cells. The dynamic assembly of Escherichia coli FtsZ in the presence of GTP is fundamental to its activity. FtsZ polymerization is a very attractive target for novel antibiotics given its fundamental and universal function. In this study our aim was to understand further the GTP-dependent FtsZ polymerization mechanism and our main focus is on the pH dependence of its behaviour. A key feature of this work is the use of linear dichroism (LD) to follow the polymerization of FtsZ monomers into polymeric structures. LD is the differential absorption of light polarized parallel and perpendicular to an orientation direction (in this case that provided by shear flow). It thus readily distinguishes between FtsZ polymers and monomers. It also distinguishes FtsZ polymers and less well-defined aggregates, which light scattering methodologies do not. The polymerization of FtsZ over a range of pHs was studied by right-angled light scattering to probe mass of FtsZ structures, LD to probe real-time formation of linear polymeric fibres, a specially developed phosphate release assay to relate guanosine triphosphate (GTP) hydrolysis to polymer formation, and electron microscopy (EM) imaging of reaction products as a function of time and pH. We have found that lowering the pH from neutral to 6.5 does not change the nature of the FtsZ polymers in solution—it simply facilitates the polymerization so the fibres present are longer and more abundant. Conversely, lowering the pH to 6.0 has much the same effect as introducing divalent cations or the FtsZ-associated protein YgfE (a putative ZapA orthologue in E. coli)—it stablizes associations of protofilaments.
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spelling pubmed-31251652011-07-07 The pH Dependence of Polymerization and Bundling by the Essential Bacterial Cytoskeltal Protein FtsZ Pacheco-Gómez, Raúl Roper, David I. Dafforn, Timothy R. Rodger, Alison PLoS One Research Article There is a growing body of evidence that bacterial cell division is an intricate coordinated process of comparable complexity to that seen in eukaryotic cells. The dynamic assembly of Escherichia coli FtsZ in the presence of GTP is fundamental to its activity. FtsZ polymerization is a very attractive target for novel antibiotics given its fundamental and universal function. In this study our aim was to understand further the GTP-dependent FtsZ polymerization mechanism and our main focus is on the pH dependence of its behaviour. A key feature of this work is the use of linear dichroism (LD) to follow the polymerization of FtsZ monomers into polymeric structures. LD is the differential absorption of light polarized parallel and perpendicular to an orientation direction (in this case that provided by shear flow). It thus readily distinguishes between FtsZ polymers and monomers. It also distinguishes FtsZ polymers and less well-defined aggregates, which light scattering methodologies do not. The polymerization of FtsZ over a range of pHs was studied by right-angled light scattering to probe mass of FtsZ structures, LD to probe real-time formation of linear polymeric fibres, a specially developed phosphate release assay to relate guanosine triphosphate (GTP) hydrolysis to polymer formation, and electron microscopy (EM) imaging of reaction products as a function of time and pH. We have found that lowering the pH from neutral to 6.5 does not change the nature of the FtsZ polymers in solution—it simply facilitates the polymerization so the fibres present are longer and more abundant. Conversely, lowering the pH to 6.0 has much the same effect as introducing divalent cations or the FtsZ-associated protein YgfE (a putative ZapA orthologue in E. coli)—it stablizes associations of protofilaments. Public Library of Science 2011-06-28 /pmc/articles/PMC3125165/ /pubmed/21738567 http://dx.doi.org/10.1371/journal.pone.0019369 Text en Pacheco-Gomez et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Pacheco-Gómez, Raúl
Roper, David I.
Dafforn, Timothy R.
Rodger, Alison
The pH Dependence of Polymerization and Bundling by the Essential Bacterial Cytoskeltal Protein FtsZ
title The pH Dependence of Polymerization and Bundling by the Essential Bacterial Cytoskeltal Protein FtsZ
title_full The pH Dependence of Polymerization and Bundling by the Essential Bacterial Cytoskeltal Protein FtsZ
title_fullStr The pH Dependence of Polymerization and Bundling by the Essential Bacterial Cytoskeltal Protein FtsZ
title_full_unstemmed The pH Dependence of Polymerization and Bundling by the Essential Bacterial Cytoskeltal Protein FtsZ
title_short The pH Dependence of Polymerization and Bundling by the Essential Bacterial Cytoskeltal Protein FtsZ
title_sort ph dependence of polymerization and bundling by the essential bacterial cytoskeltal protein ftsz
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3125165/
https://www.ncbi.nlm.nih.gov/pubmed/21738567
http://dx.doi.org/10.1371/journal.pone.0019369
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