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Distinct regions of H. pylori’s bactofilin CcmA regulate protein–protein interactions to control helical cell shape

The helical shape of Helicobacter pylori cells promotes robust stomach colonization; however, how the helical shape of H. pylori cells is determined is unresolved. Previous work identified helical-cell-shape-promoting protein complexes containing a peptidoglycan-hydrolase (Csd1), a peptidoglycan pre...

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Autores principales: Sichel, Sophie R, Bratton, Benjamin P, Salama, Nina R
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9507126/
https://www.ncbi.nlm.nih.gov/pubmed/36073778
http://dx.doi.org/10.7554/eLife.80111
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author Sichel, Sophie R
Bratton, Benjamin P
Salama, Nina R
author_facet Sichel, Sophie R
Bratton, Benjamin P
Salama, Nina R
author_sort Sichel, Sophie R
collection PubMed
description The helical shape of Helicobacter pylori cells promotes robust stomach colonization; however, how the helical shape of H. pylori cells is determined is unresolved. Previous work identified helical-cell-shape-promoting protein complexes containing a peptidoglycan-hydrolase (Csd1), a peptidoglycan precursor synthesis enzyme (MurF), a non-enzymatic homolog of Csd1 (Csd2), non-enzymatic transmembrane proteins (Csd5 and Csd7), and a bactofilin (CcmA). Bactofilins are highly conserved, spontaneously polymerizing cytoskeletal bacterial proteins. We sought to understand CcmA’s function in generating the helical shape of H. pylori cells. Using CcmA deletion analysis, in vitro polymerization, and in vivo co-immunoprecipitation experiments, we identified that the bactofilin domain and N-terminal region of CcmA are required for helical cell shape and the bactofilin domain of CcmA is sufficient for polymerization and interactions with Csd5 and Csd7. We also found that CcmA’s N-terminal region inhibits interaction with Csd7. Deleting the N-terminal region of CcmA increases CcmA-Csd7 interactions and destabilizes the peptidoglycan-hydrolase Csd1. Using super-resolution microscopy, we found that Csd5 recruits CcmA to the cell envelope and promotes CcmA enrichment at the major helical axis. Thus, CcmA helps organize cell-shape-determining proteins and peptidoglycan synthesis machinery to coordinate cell wall modification and synthesis, promoting the curvature required to build a helical cell.
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spelling pubmed-95071262022-09-24 Distinct regions of H. pylori’s bactofilin CcmA regulate protein–protein interactions to control helical cell shape Sichel, Sophie R Bratton, Benjamin P Salama, Nina R eLife Microbiology and Infectious Disease The helical shape of Helicobacter pylori cells promotes robust stomach colonization; however, how the helical shape of H. pylori cells is determined is unresolved. Previous work identified helical-cell-shape-promoting protein complexes containing a peptidoglycan-hydrolase (Csd1), a peptidoglycan precursor synthesis enzyme (MurF), a non-enzymatic homolog of Csd1 (Csd2), non-enzymatic transmembrane proteins (Csd5 and Csd7), and a bactofilin (CcmA). Bactofilins are highly conserved, spontaneously polymerizing cytoskeletal bacterial proteins. We sought to understand CcmA’s function in generating the helical shape of H. pylori cells. Using CcmA deletion analysis, in vitro polymerization, and in vivo co-immunoprecipitation experiments, we identified that the bactofilin domain and N-terminal region of CcmA are required for helical cell shape and the bactofilin domain of CcmA is sufficient for polymerization and interactions with Csd5 and Csd7. We also found that CcmA’s N-terminal region inhibits interaction with Csd7. Deleting the N-terminal region of CcmA increases CcmA-Csd7 interactions and destabilizes the peptidoglycan-hydrolase Csd1. Using super-resolution microscopy, we found that Csd5 recruits CcmA to the cell envelope and promotes CcmA enrichment at the major helical axis. Thus, CcmA helps organize cell-shape-determining proteins and peptidoglycan synthesis machinery to coordinate cell wall modification and synthesis, promoting the curvature required to build a helical cell. eLife Sciences Publications, Ltd 2022-09-08 /pmc/articles/PMC9507126/ /pubmed/36073778 http://dx.doi.org/10.7554/eLife.80111 Text en © 2022, Sichel et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Microbiology and Infectious Disease
Sichel, Sophie R
Bratton, Benjamin P
Salama, Nina R
Distinct regions of H. pylori’s bactofilin CcmA regulate protein–protein interactions to control helical cell shape
title Distinct regions of H. pylori’s bactofilin CcmA regulate protein–protein interactions to control helical cell shape
title_full Distinct regions of H. pylori’s bactofilin CcmA regulate protein–protein interactions to control helical cell shape
title_fullStr Distinct regions of H. pylori’s bactofilin CcmA regulate protein–protein interactions to control helical cell shape
title_full_unstemmed Distinct regions of H. pylori’s bactofilin CcmA regulate protein–protein interactions to control helical cell shape
title_short Distinct regions of H. pylori’s bactofilin CcmA regulate protein–protein interactions to control helical cell shape
title_sort distinct regions of h. pylori’s bactofilin ccma regulate protein–protein interactions to control helical cell shape
topic Microbiology and Infectious Disease
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9507126/
https://www.ncbi.nlm.nih.gov/pubmed/36073778
http://dx.doi.org/10.7554/eLife.80111
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