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The Nucleoid Occlusion SlmA Protein Accelerates the Disassembly of the FtsZ Protein Polymers without Affecting Their GTPase Activity

Division site selection is achieved in bacteria by different mechanisms, one of them being nucleoid occlusion, which prevents Z-ring assembly nearby the chromosome. Nucleoid occlusion in E. coli is mediated by SlmA, a sequence specific DNA binding protein that antagonizes FtsZ assembly. Here we show...

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Autores principales: Cabré, Elisa J., Monterroso, Begoña, Alfonso, Carlos, Sánchez-Gorostiaga, Alicia, Reija, Belén, Jiménez, Mercedes, Vicente, Miguel, Zorrilla, Silvia, Rivas, Germán
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4423959/
https://www.ncbi.nlm.nih.gov/pubmed/25950808
http://dx.doi.org/10.1371/journal.pone.0126434
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author Cabré, Elisa J.
Monterroso, Begoña
Alfonso, Carlos
Sánchez-Gorostiaga, Alicia
Reija, Belén
Jiménez, Mercedes
Vicente, Miguel
Zorrilla, Silvia
Rivas, Germán
author_facet Cabré, Elisa J.
Monterroso, Begoña
Alfonso, Carlos
Sánchez-Gorostiaga, Alicia
Reija, Belén
Jiménez, Mercedes
Vicente, Miguel
Zorrilla, Silvia
Rivas, Germán
author_sort Cabré, Elisa J.
collection PubMed
description Division site selection is achieved in bacteria by different mechanisms, one of them being nucleoid occlusion, which prevents Z-ring assembly nearby the chromosome. Nucleoid occlusion in E. coli is mediated by SlmA, a sequence specific DNA binding protein that antagonizes FtsZ assembly. Here we show that, when bound to its specific target DNA sequences (SBS), SlmA reduces the lifetime of the FtsZ protofilaments in solution and of the FtsZ bundles when located inside permeable giant vesicles. This effect appears to be essentially uncoupled from the GTPase activity of the FtsZ protofilaments, which is insensitive to the presence of SlmA·SBS. The interaction of SlmA·SBS with either FtsZ protofilaments containing GTP or FtsZ oligomers containing GDP results in the disassembly of FtsZ polymers. We propose that SlmA·SBS complexes control the polymerization state of FtsZ by accelerating the disassembly of the FtsZ polymers leading to their fragmentation into shorter species that are still able to hydrolyze GTP at the same rate. SlmA defines therefore a new class of inhibitors of the FtsZ ring different from the SOS response regulator SulA and from the moonlighting enzyme OpgH, inhibitors of the GTPase activity. SlmA also shows differences compared with MinC, the inhibitor of the division site selection Min system, which shortens FtsZ protofilaments by interacting with the GDP form of FtsZ.
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spelling pubmed-44239592015-05-13 The Nucleoid Occlusion SlmA Protein Accelerates the Disassembly of the FtsZ Protein Polymers without Affecting Their GTPase Activity Cabré, Elisa J. Monterroso, Begoña Alfonso, Carlos Sánchez-Gorostiaga, Alicia Reija, Belén Jiménez, Mercedes Vicente, Miguel Zorrilla, Silvia Rivas, Germán PLoS One Research Article Division site selection is achieved in bacteria by different mechanisms, one of them being nucleoid occlusion, which prevents Z-ring assembly nearby the chromosome. Nucleoid occlusion in E. coli is mediated by SlmA, a sequence specific DNA binding protein that antagonizes FtsZ assembly. Here we show that, when bound to its specific target DNA sequences (SBS), SlmA reduces the lifetime of the FtsZ protofilaments in solution and of the FtsZ bundles when located inside permeable giant vesicles. This effect appears to be essentially uncoupled from the GTPase activity of the FtsZ protofilaments, which is insensitive to the presence of SlmA·SBS. The interaction of SlmA·SBS with either FtsZ protofilaments containing GTP or FtsZ oligomers containing GDP results in the disassembly of FtsZ polymers. We propose that SlmA·SBS complexes control the polymerization state of FtsZ by accelerating the disassembly of the FtsZ polymers leading to their fragmentation into shorter species that are still able to hydrolyze GTP at the same rate. SlmA defines therefore a new class of inhibitors of the FtsZ ring different from the SOS response regulator SulA and from the moonlighting enzyme OpgH, inhibitors of the GTPase activity. SlmA also shows differences compared with MinC, the inhibitor of the division site selection Min system, which shortens FtsZ protofilaments by interacting with the GDP form of FtsZ. Public Library of Science 2015-05-07 /pmc/articles/PMC4423959/ /pubmed/25950808 http://dx.doi.org/10.1371/journal.pone.0126434 Text en © 2015 Cabré 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
Cabré, Elisa J.
Monterroso, Begoña
Alfonso, Carlos
Sánchez-Gorostiaga, Alicia
Reija, Belén
Jiménez, Mercedes
Vicente, Miguel
Zorrilla, Silvia
Rivas, Germán
The Nucleoid Occlusion SlmA Protein Accelerates the Disassembly of the FtsZ Protein Polymers without Affecting Their GTPase Activity
title The Nucleoid Occlusion SlmA Protein Accelerates the Disassembly of the FtsZ Protein Polymers without Affecting Their GTPase Activity
title_full The Nucleoid Occlusion SlmA Protein Accelerates the Disassembly of the FtsZ Protein Polymers without Affecting Their GTPase Activity
title_fullStr The Nucleoid Occlusion SlmA Protein Accelerates the Disassembly of the FtsZ Protein Polymers without Affecting Their GTPase Activity
title_full_unstemmed The Nucleoid Occlusion SlmA Protein Accelerates the Disassembly of the FtsZ Protein Polymers without Affecting Their GTPase Activity
title_short The Nucleoid Occlusion SlmA Protein Accelerates the Disassembly of the FtsZ Protein Polymers without Affecting Their GTPase Activity
title_sort nucleoid occlusion slma protein accelerates the disassembly of the ftsz protein polymers without affecting their gtpase activity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4423959/
https://www.ncbi.nlm.nih.gov/pubmed/25950808
http://dx.doi.org/10.1371/journal.pone.0126434
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