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Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring

The bacterial flagellum is a protein nanomachine essential for bacterial motility. The flagellar basal body contains several ring structures. The MS-ring is embedded in the cytoplasmic membrane and is formed at the earliest stage of flagellar formation to serve as the base for flagellar assembly as...

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Autores principales: Takekawa, Norihiro, Kawamoto, Akihiro, Sakuma, Mayuko, Kato, Takayuki, Kojima, Seiji, Kinoshita, Miki, Minamino, Tohru, Namba, Keiichi, Homma, Michio, Imada, Katsumi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8092281/
https://www.ncbi.nlm.nih.gov/pubmed/33653894
http://dx.doi.org/10.1128/mBio.03199-20
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author Takekawa, Norihiro
Kawamoto, Akihiro
Sakuma, Mayuko
Kato, Takayuki
Kojima, Seiji
Kinoshita, Miki
Minamino, Tohru
Namba, Keiichi
Homma, Michio
Imada, Katsumi
author_facet Takekawa, Norihiro
Kawamoto, Akihiro
Sakuma, Mayuko
Kato, Takayuki
Kojima, Seiji
Kinoshita, Miki
Minamino, Tohru
Namba, Keiichi
Homma, Michio
Imada, Katsumi
author_sort Takekawa, Norihiro
collection PubMed
description The bacterial flagellum is a protein nanomachine essential for bacterial motility. The flagellar basal body contains several ring structures. The MS-ring is embedded in the cytoplasmic membrane and is formed at the earliest stage of flagellar formation to serve as the base for flagellar assembly as well as a housing for the flagellar protein export gate complex. The MS-ring is formed by FliF, which has two transmembrane helices and a large periplasmic region. A recent electron cryomicroscopy (cryoEM) study of the MS-ring formed by overexpressed FliF revealed a symmetry mismatch between the S-ring and inner part of the M-ring. However, the actual symmetry relation in the native MS-ring and positions of missing domains remain obscure. Here, we show the structure of the M-ring by combining cryoEM and X-ray crystallography. The crystal structure of the N-terminal half of the periplasmic region of FliF showed that it consists of two domains (D1 and D2) resembling PrgK D1/PrgH D2 and PrgK D2/PrgH D3 of the injectisome. CryoEM analysis revealed that the inner part of the M-ring shows a gear wheel-like density with the inner ring of C23 symmetry surrounded by cogs with C11 symmetry, to which 34 copies of FliF(D1–D2) fitted well. We propose that FliF(D1–D2) adopts two distinct orientations in the M-ring relative to the rest of FliF, with 23 chains forming the wheel and 11 chains forming the cogs, and the 34 chains come together to form the S-ring with C34 symmetry for multiple functions of the MS-ring.
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spelling pubmed-80922812021-05-04 Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring Takekawa, Norihiro Kawamoto, Akihiro Sakuma, Mayuko Kato, Takayuki Kojima, Seiji Kinoshita, Miki Minamino, Tohru Namba, Keiichi Homma, Michio Imada, Katsumi mBio Research Article The bacterial flagellum is a protein nanomachine essential for bacterial motility. The flagellar basal body contains several ring structures. The MS-ring is embedded in the cytoplasmic membrane and is formed at the earliest stage of flagellar formation to serve as the base for flagellar assembly as well as a housing for the flagellar protein export gate complex. The MS-ring is formed by FliF, which has two transmembrane helices and a large periplasmic region. A recent electron cryomicroscopy (cryoEM) study of the MS-ring formed by overexpressed FliF revealed a symmetry mismatch between the S-ring and inner part of the M-ring. However, the actual symmetry relation in the native MS-ring and positions of missing domains remain obscure. Here, we show the structure of the M-ring by combining cryoEM and X-ray crystallography. The crystal structure of the N-terminal half of the periplasmic region of FliF showed that it consists of two domains (D1 and D2) resembling PrgK D1/PrgH D2 and PrgK D2/PrgH D3 of the injectisome. CryoEM analysis revealed that the inner part of the M-ring shows a gear wheel-like density with the inner ring of C23 symmetry surrounded by cogs with C11 symmetry, to which 34 copies of FliF(D1–D2) fitted well. We propose that FliF(D1–D2) adopts two distinct orientations in the M-ring relative to the rest of FliF, with 23 chains forming the wheel and 11 chains forming the cogs, and the 34 chains come together to form the S-ring with C34 symmetry for multiple functions of the MS-ring. American Society for Microbiology 2021-03-02 /pmc/articles/PMC8092281/ /pubmed/33653894 http://dx.doi.org/10.1128/mBio.03199-20 Text en Copyright © 2021 Takekawa et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Takekawa, Norihiro
Kawamoto, Akihiro
Sakuma, Mayuko
Kato, Takayuki
Kojima, Seiji
Kinoshita, Miki
Minamino, Tohru
Namba, Keiichi
Homma, Michio
Imada, Katsumi
Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring
title Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring
title_full Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring
title_fullStr Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring
title_full_unstemmed Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring
title_short Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring
title_sort two distinct conformations in 34 flif subunits generate three different symmetries within the flagellar ms-ring
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8092281/
https://www.ncbi.nlm.nih.gov/pubmed/33653894
http://dx.doi.org/10.1128/mBio.03199-20
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