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ATP Dependent Rotational Motion of Group II Chaperonin Observed by X-ray Single Molecule Tracking

Group II chaperonins play important roles in protein homeostasis in the eukaryotic cytosol and in Archaea. These proteins assist in the folding of nascent polypeptides and also refold unfolded proteins in an ATP-dependent manner. Chaperonin-mediated protein folding is dependent on the closure and op...

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Autores principales: Sekiguchi, Hiroshi, Nakagawa, Ayumi, Moriya, Kazuki, Makabe, Koki, Ichiyanagi, Kouhei, Nozawa, Shunsuke, Sato, Tokushi, Adachi, Shin-ichi, Kuwajima, Kunihiro, Yohda, Masafumi, Sasaki, Yuji C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3666759/
https://www.ncbi.nlm.nih.gov/pubmed/23734192
http://dx.doi.org/10.1371/journal.pone.0064176
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author Sekiguchi, Hiroshi
Nakagawa, Ayumi
Moriya, Kazuki
Makabe, Koki
Ichiyanagi, Kouhei
Nozawa, Shunsuke
Sato, Tokushi
Adachi, Shin-ichi
Kuwajima, Kunihiro
Yohda, Masafumi
Sasaki, Yuji C.
author_facet Sekiguchi, Hiroshi
Nakagawa, Ayumi
Moriya, Kazuki
Makabe, Koki
Ichiyanagi, Kouhei
Nozawa, Shunsuke
Sato, Tokushi
Adachi, Shin-ichi
Kuwajima, Kunihiro
Yohda, Masafumi
Sasaki, Yuji C.
author_sort Sekiguchi, Hiroshi
collection PubMed
description Group II chaperonins play important roles in protein homeostasis in the eukaryotic cytosol and in Archaea. These proteins assist in the folding of nascent polypeptides and also refold unfolded proteins in an ATP-dependent manner. Chaperonin-mediated protein folding is dependent on the closure and opening of a built-in lid, which is controlled by the ATP hydrolysis cycle. Recent structural studies suggest that the ring structure of the chaperonin twists to seal off the central cavity. In this study, we demonstrate ATP-dependent dynamics of a group II chaperonin at the single-molecule level with highly accurate rotational axes views by diffracted X-ray tracking (DXT). A UV light-triggered DXT study with caged-ATP and stopped-flow fluorometry revealed that the lid partially closed within 1 s of ATP binding, the closed ring subsequently twisted counterclockwise within 2–6 s, as viewed from the top to bottom of the chaperonin, and the twisted ring reverted to the original open-state with a clockwise motion. Our analyses clearly demonstrate that the biphasic lid-closure process occurs with unsynchronized closure and a synchronized counterclockwise twisting motion.
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spelling pubmed-36667592013-06-03 ATP Dependent Rotational Motion of Group II Chaperonin Observed by X-ray Single Molecule Tracking Sekiguchi, Hiroshi Nakagawa, Ayumi Moriya, Kazuki Makabe, Koki Ichiyanagi, Kouhei Nozawa, Shunsuke Sato, Tokushi Adachi, Shin-ichi Kuwajima, Kunihiro Yohda, Masafumi Sasaki, Yuji C. PLoS One Research Article Group II chaperonins play important roles in protein homeostasis in the eukaryotic cytosol and in Archaea. These proteins assist in the folding of nascent polypeptides and also refold unfolded proteins in an ATP-dependent manner. Chaperonin-mediated protein folding is dependent on the closure and opening of a built-in lid, which is controlled by the ATP hydrolysis cycle. Recent structural studies suggest that the ring structure of the chaperonin twists to seal off the central cavity. In this study, we demonstrate ATP-dependent dynamics of a group II chaperonin at the single-molecule level with highly accurate rotational axes views by diffracted X-ray tracking (DXT). A UV light-triggered DXT study with caged-ATP and stopped-flow fluorometry revealed that the lid partially closed within 1 s of ATP binding, the closed ring subsequently twisted counterclockwise within 2–6 s, as viewed from the top to bottom of the chaperonin, and the twisted ring reverted to the original open-state with a clockwise motion. Our analyses clearly demonstrate that the biphasic lid-closure process occurs with unsynchronized closure and a synchronized counterclockwise twisting motion. Public Library of Science 2013-05-29 /pmc/articles/PMC3666759/ /pubmed/23734192 http://dx.doi.org/10.1371/journal.pone.0064176 Text en © 2013 Sekiguchi 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
Sekiguchi, Hiroshi
Nakagawa, Ayumi
Moriya, Kazuki
Makabe, Koki
Ichiyanagi, Kouhei
Nozawa, Shunsuke
Sato, Tokushi
Adachi, Shin-ichi
Kuwajima, Kunihiro
Yohda, Masafumi
Sasaki, Yuji C.
ATP Dependent Rotational Motion of Group II Chaperonin Observed by X-ray Single Molecule Tracking
title ATP Dependent Rotational Motion of Group II Chaperonin Observed by X-ray Single Molecule Tracking
title_full ATP Dependent Rotational Motion of Group II Chaperonin Observed by X-ray Single Molecule Tracking
title_fullStr ATP Dependent Rotational Motion of Group II Chaperonin Observed by X-ray Single Molecule Tracking
title_full_unstemmed ATP Dependent Rotational Motion of Group II Chaperonin Observed by X-ray Single Molecule Tracking
title_short ATP Dependent Rotational Motion of Group II Chaperonin Observed by X-ray Single Molecule Tracking
title_sort atp dependent rotational motion of group ii chaperonin observed by x-ray single molecule tracking
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3666759/
https://www.ncbi.nlm.nih.gov/pubmed/23734192
http://dx.doi.org/10.1371/journal.pone.0064176
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