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Membrane voltage-dependent activation mechanism of the bacterial flagellar protein export apparatus

The proton motive force (PMF) consists of the electric potential difference (Δψ), which is measured as membrane voltage, and the proton concentration difference (ΔpH) across the cytoplasmic membrane. The flagellar protein export machinery is composed of a PMF-driven transmembrane export gate complex...

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Autores principales: Minamino, Tohru, Morimoto, Yusuke V., Kinoshita, Miki, Namba, Keiichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179193/
https://www.ncbi.nlm.nih.gov/pubmed/34035173
http://dx.doi.org/10.1073/pnas.2026587118
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author Minamino, Tohru
Morimoto, Yusuke V.
Kinoshita, Miki
Namba, Keiichi
author_facet Minamino, Tohru
Morimoto, Yusuke V.
Kinoshita, Miki
Namba, Keiichi
author_sort Minamino, Tohru
collection PubMed
description The proton motive force (PMF) consists of the electric potential difference (Δψ), which is measured as membrane voltage, and the proton concentration difference (ΔpH) across the cytoplasmic membrane. The flagellar protein export machinery is composed of a PMF-driven transmembrane export gate complex and a cytoplasmic ATPase ring complex consisting of FliH, FliI, and FliJ. ATP hydrolysis by the FliI ATPase activates the export gate complex to become an active protein transporter utilizing Δψ to drive proton-coupled protein export. An interaction between FliJ and a transmembrane ion channel protein, FlhA, is a critical step for Δψ-driven protein export. To clarify how Δψ is utilized for flagellar protein export, we analyzed the export properties of the export gate complex in the absence of FliH and FliI. The protein transport activity of the export gate complex was very low at external pH 7.0 but increased significantly with an increase in Δψ by an upward shift of external pH from 7.0 to 8.5. This observation suggests that the export gate complex is equipped with a voltage-gated mechanism. An increase in the cytoplasmic level of FliJ and a gain-of-function mutation in FlhA significantly reduced the Δψ dependency of flagellar protein export by the export gate complex. However, deletion of FliJ decreased Δψ-dependent protein export significantly. We propose that Δψ is required for efficient interaction between FliJ and FlhA to open the FlhA ion channel to conduct protons to drive flagellar protein export in a Δψ-dependent manner.
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spelling pubmed-81791932021-06-16 Membrane voltage-dependent activation mechanism of the bacterial flagellar protein export apparatus Minamino, Tohru Morimoto, Yusuke V. Kinoshita, Miki Namba, Keiichi Proc Natl Acad Sci U S A Biological Sciences The proton motive force (PMF) consists of the electric potential difference (Δψ), which is measured as membrane voltage, and the proton concentration difference (ΔpH) across the cytoplasmic membrane. The flagellar protein export machinery is composed of a PMF-driven transmembrane export gate complex and a cytoplasmic ATPase ring complex consisting of FliH, FliI, and FliJ. ATP hydrolysis by the FliI ATPase activates the export gate complex to become an active protein transporter utilizing Δψ to drive proton-coupled protein export. An interaction between FliJ and a transmembrane ion channel protein, FlhA, is a critical step for Δψ-driven protein export. To clarify how Δψ is utilized for flagellar protein export, we analyzed the export properties of the export gate complex in the absence of FliH and FliI. The protein transport activity of the export gate complex was very low at external pH 7.0 but increased significantly with an increase in Δψ by an upward shift of external pH from 7.0 to 8.5. This observation suggests that the export gate complex is equipped with a voltage-gated mechanism. An increase in the cytoplasmic level of FliJ and a gain-of-function mutation in FlhA significantly reduced the Δψ dependency of flagellar protein export by the export gate complex. However, deletion of FliJ decreased Δψ-dependent protein export significantly. We propose that Δψ is required for efficient interaction between FliJ and FlhA to open the FlhA ion channel to conduct protons to drive flagellar protein export in a Δψ-dependent manner. National Academy of Sciences 2021-06-01 2021-05-25 /pmc/articles/PMC8179193/ /pubmed/34035173 http://dx.doi.org/10.1073/pnas.2026587118 Text en Copyright © 2021 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Minamino, Tohru
Morimoto, Yusuke V.
Kinoshita, Miki
Namba, Keiichi
Membrane voltage-dependent activation mechanism of the bacterial flagellar protein export apparatus
title Membrane voltage-dependent activation mechanism of the bacterial flagellar protein export apparatus
title_full Membrane voltage-dependent activation mechanism of the bacterial flagellar protein export apparatus
title_fullStr Membrane voltage-dependent activation mechanism of the bacterial flagellar protein export apparatus
title_full_unstemmed Membrane voltage-dependent activation mechanism of the bacterial flagellar protein export apparatus
title_short Membrane voltage-dependent activation mechanism of the bacterial flagellar protein export apparatus
title_sort membrane voltage-dependent activation mechanism of the bacterial flagellar protein export apparatus
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179193/
https://www.ncbi.nlm.nih.gov/pubmed/34035173
http://dx.doi.org/10.1073/pnas.2026587118
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