Cargando…

Physicochemical Properties of the Mammalian Molecular Chaperone HSP60

The E. coli GroEL/GroES chaperonin complex acts as a folding cage by producing a bullet-like asymmetric complex, and GroEL exists as double rings regardless of the presence of adenosine triphosphate (ATP). Its mammalian chaperonin homolog, heat shock protein, HSP60, and co-chaperonin, HSP10, play an...

Descripción completa

Detalles Bibliográficos
Autores principales: Ishida, Ryuichi, Okamoto, Tomoya, Motojima, Fumihiro, Kubota, Hiroshi, Takahashi, Hiroki, Tanabe, Masako, Oka, Toshihiko, Kitamura, Akira, Kinjo, Masataka, Yoshida, Masasuke, Otaka, Michiro, Grave, Ewa, Itoh, Hideaki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5855711/
https://www.ncbi.nlm.nih.gov/pubmed/29415503
http://dx.doi.org/10.3390/ijms19020489
_version_ 1783307160803868672
author Ishida, Ryuichi
Okamoto, Tomoya
Motojima, Fumihiro
Kubota, Hiroshi
Takahashi, Hiroki
Tanabe, Masako
Oka, Toshihiko
Kitamura, Akira
Kinjo, Masataka
Yoshida, Masasuke
Otaka, Michiro
Grave, Ewa
Itoh, Hideaki
author_facet Ishida, Ryuichi
Okamoto, Tomoya
Motojima, Fumihiro
Kubota, Hiroshi
Takahashi, Hiroki
Tanabe, Masako
Oka, Toshihiko
Kitamura, Akira
Kinjo, Masataka
Yoshida, Masasuke
Otaka, Michiro
Grave, Ewa
Itoh, Hideaki
author_sort Ishida, Ryuichi
collection PubMed
description The E. coli GroEL/GroES chaperonin complex acts as a folding cage by producing a bullet-like asymmetric complex, and GroEL exists as double rings regardless of the presence of adenosine triphosphate (ATP). Its mammalian chaperonin homolog, heat shock protein, HSP60, and co-chaperonin, HSP10, play an essential role in protein folding by capturing unfolded proteins in the HSP60/HSP10 complex. However, the structural transition in ATPase-dependent reaction cycle has remained unclear. We found nucleotide-dependent association and dissociation of the HSP60/HSP10 complex using various analytical techniques under near physiological conditions. Our results showed that HSP60 exist as a significant number of double-ring complexes (football- and bullet-type complexes) and a small number of single-ring complexes in the presence of ATP and HSP10. HSP10 binds to HSP60 in the presence of ATP, which increased the HSP60 double-ring formation. After ATP is hydrolyzed to Adenosine diphosphate (ADP), HSP60 released the HSP10 and the dissociation of the double-ring to single-rings occurred. These results indicated that HSP60/HSP10 undergoes an ATP-dependent transition between the single- and double-rings in their system that is highly distinctive from the GroEL/GroES system particularly in the manner of complex formation and the roles of ATP binding and hydrolysis in the reaction cycle.
format Online
Article
Text
id pubmed-5855711
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-58557112018-03-20 Physicochemical Properties of the Mammalian Molecular Chaperone HSP60 Ishida, Ryuichi Okamoto, Tomoya Motojima, Fumihiro Kubota, Hiroshi Takahashi, Hiroki Tanabe, Masako Oka, Toshihiko Kitamura, Akira Kinjo, Masataka Yoshida, Masasuke Otaka, Michiro Grave, Ewa Itoh, Hideaki Int J Mol Sci Article The E. coli GroEL/GroES chaperonin complex acts as a folding cage by producing a bullet-like asymmetric complex, and GroEL exists as double rings regardless of the presence of adenosine triphosphate (ATP). Its mammalian chaperonin homolog, heat shock protein, HSP60, and co-chaperonin, HSP10, play an essential role in protein folding by capturing unfolded proteins in the HSP60/HSP10 complex. However, the structural transition in ATPase-dependent reaction cycle has remained unclear. We found nucleotide-dependent association and dissociation of the HSP60/HSP10 complex using various analytical techniques under near physiological conditions. Our results showed that HSP60 exist as a significant number of double-ring complexes (football- and bullet-type complexes) and a small number of single-ring complexes in the presence of ATP and HSP10. HSP10 binds to HSP60 in the presence of ATP, which increased the HSP60 double-ring formation. After ATP is hydrolyzed to Adenosine diphosphate (ADP), HSP60 released the HSP10 and the dissociation of the double-ring to single-rings occurred. These results indicated that HSP60/HSP10 undergoes an ATP-dependent transition between the single- and double-rings in their system that is highly distinctive from the GroEL/GroES system particularly in the manner of complex formation and the roles of ATP binding and hydrolysis in the reaction cycle. MDPI 2018-02-06 /pmc/articles/PMC5855711/ /pubmed/29415503 http://dx.doi.org/10.3390/ijms19020489 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ishida, Ryuichi
Okamoto, Tomoya
Motojima, Fumihiro
Kubota, Hiroshi
Takahashi, Hiroki
Tanabe, Masako
Oka, Toshihiko
Kitamura, Akira
Kinjo, Masataka
Yoshida, Masasuke
Otaka, Michiro
Grave, Ewa
Itoh, Hideaki
Physicochemical Properties of the Mammalian Molecular Chaperone HSP60
title Physicochemical Properties of the Mammalian Molecular Chaperone HSP60
title_full Physicochemical Properties of the Mammalian Molecular Chaperone HSP60
title_fullStr Physicochemical Properties of the Mammalian Molecular Chaperone HSP60
title_full_unstemmed Physicochemical Properties of the Mammalian Molecular Chaperone HSP60
title_short Physicochemical Properties of the Mammalian Molecular Chaperone HSP60
title_sort physicochemical properties of the mammalian molecular chaperone hsp60
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5855711/
https://www.ncbi.nlm.nih.gov/pubmed/29415503
http://dx.doi.org/10.3390/ijms19020489
work_keys_str_mv AT ishidaryuichi physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT okamototomoya physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT motojimafumihiro physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT kubotahiroshi physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT takahashihiroki physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT tanabemasako physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT okatoshihiko physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT kitamuraakira physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT kinjomasataka physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT yoshidamasasuke physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT otakamichiro physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT graveewa physicochemicalpropertiesofthemammalianmolecularchaperonehsp60
AT itohhideaki physicochemicalpropertiesofthemammalianmolecularchaperonehsp60