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FliH and FliI ensure efficient energy coupling of flagellar type III protein export in Salmonella

For construction of the bacterial flagellum, flagellar proteins are exported via its specific export apparatus from the cytoplasm to the distal end of the growing flagellar structure. The flagellar export apparatus consists of a transmembrane (TM) export gate complex and a cytoplasmic ATPase complex...

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Autores principales: Minamino, Tohru, Kinoshita, Miki, Inoue, Yumi, Morimoto, Yusuke V., Ihara, Kunio, Koya, Satomi, Hara, Noritaka, Nishioka, Noriko, Kojima, Seiji, Homma, Michio, Namba, Keiichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4905995/
https://www.ncbi.nlm.nih.gov/pubmed/26916245
http://dx.doi.org/10.1002/mbo3.340
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author Minamino, Tohru
Kinoshita, Miki
Inoue, Yumi
Morimoto, Yusuke V.
Ihara, Kunio
Koya, Satomi
Hara, Noritaka
Nishioka, Noriko
Kojima, Seiji
Homma, Michio
Namba, Keiichi
author_facet Minamino, Tohru
Kinoshita, Miki
Inoue, Yumi
Morimoto, Yusuke V.
Ihara, Kunio
Koya, Satomi
Hara, Noritaka
Nishioka, Noriko
Kojima, Seiji
Homma, Michio
Namba, Keiichi
author_sort Minamino, Tohru
collection PubMed
description For construction of the bacterial flagellum, flagellar proteins are exported via its specific export apparatus from the cytoplasm to the distal end of the growing flagellar structure. The flagellar export apparatus consists of a transmembrane (TM) export gate complex and a cytoplasmic ATPase complex consisting of FliH, FliI, and FliJ. FlhA is a TM export gate protein and plays important roles in energy coupling of protein translocation. However, the energy coupling mechanism remains unknown. Here, we performed a cross‐complementation assay to measure robustness of the energy transduction system of the export apparatus against genetic perturbations. Vibrio FlhA restored motility of a Salmonella ΔflhA mutant but not that of a ΔfliH‐fliI flhB(P28T) ΔflhA mutant. The flgM mutations significantly increased flagellar gene expression levels, allowing Vibrio FlhA to exert its export activity in the ΔfliH‐fliI flhB(P28T) ΔflhA mutant. Pull‐down assays revealed that the binding affinities of Vibrio FlhA for FliJ and the FlgN–FlgK chaperone–substrate complex were much lower than those of Salmonella FlhA. These suggest that Vibrio FlhA requires the support of FliH and FliI to efficiently and properly interact with FliJ and the FlgN–FlgK complex. We propose that FliH and FliI ensure robust and efficient energy coupling of protein export during flagellar assembly.
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spelling pubmed-49059952016-06-15 FliH and FliI ensure efficient energy coupling of flagellar type III protein export in Salmonella Minamino, Tohru Kinoshita, Miki Inoue, Yumi Morimoto, Yusuke V. Ihara, Kunio Koya, Satomi Hara, Noritaka Nishioka, Noriko Kojima, Seiji Homma, Michio Namba, Keiichi Microbiologyopen Original Research For construction of the bacterial flagellum, flagellar proteins are exported via its specific export apparatus from the cytoplasm to the distal end of the growing flagellar structure. The flagellar export apparatus consists of a transmembrane (TM) export gate complex and a cytoplasmic ATPase complex consisting of FliH, FliI, and FliJ. FlhA is a TM export gate protein and plays important roles in energy coupling of protein translocation. However, the energy coupling mechanism remains unknown. Here, we performed a cross‐complementation assay to measure robustness of the energy transduction system of the export apparatus against genetic perturbations. Vibrio FlhA restored motility of a Salmonella ΔflhA mutant but not that of a ΔfliH‐fliI flhB(P28T) ΔflhA mutant. The flgM mutations significantly increased flagellar gene expression levels, allowing Vibrio FlhA to exert its export activity in the ΔfliH‐fliI flhB(P28T) ΔflhA mutant. Pull‐down assays revealed that the binding affinities of Vibrio FlhA for FliJ and the FlgN–FlgK chaperone–substrate complex were much lower than those of Salmonella FlhA. These suggest that Vibrio FlhA requires the support of FliH and FliI to efficiently and properly interact with FliJ and the FlgN–FlgK complex. We propose that FliH and FliI ensure robust and efficient energy coupling of protein export during flagellar assembly. John Wiley and Sons Inc. 2016-02-25 /pmc/articles/PMC4905995/ /pubmed/26916245 http://dx.doi.org/10.1002/mbo3.340 Text en © 2016 The Authors. MicrobiologyOpen published by John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Minamino, Tohru
Kinoshita, Miki
Inoue, Yumi
Morimoto, Yusuke V.
Ihara, Kunio
Koya, Satomi
Hara, Noritaka
Nishioka, Noriko
Kojima, Seiji
Homma, Michio
Namba, Keiichi
FliH and FliI ensure efficient energy coupling of flagellar type III protein export in Salmonella
title FliH and FliI ensure efficient energy coupling of flagellar type III protein export in Salmonella
title_full FliH and FliI ensure efficient energy coupling of flagellar type III protein export in Salmonella
title_fullStr FliH and FliI ensure efficient energy coupling of flagellar type III protein export in Salmonella
title_full_unstemmed FliH and FliI ensure efficient energy coupling of flagellar type III protein export in Salmonella
title_short FliH and FliI ensure efficient energy coupling of flagellar type III protein export in Salmonella
title_sort flih and flii ensure efficient energy coupling of flagellar type iii protein export in salmonella
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4905995/
https://www.ncbi.nlm.nih.gov/pubmed/26916245
http://dx.doi.org/10.1002/mbo3.340
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