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Mechanism of Folding Chamber Closure in a Group II Chaperonin

Group II chaperonins are essential mediators of cellular protein folding in eukaryotes and archaea. These oligomeric protein machines, ~1MDa, consist of two back-to-back rings encompassing a central cavity that accommodates polypeptide substrates1,2,3. Chaperonin-mediated protein folding is critical...

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Autores principales: Zhang, Junjie, Baker, Matthew L., Schröder, Gunnar F., Douglas, Nicholai R., Reissmann, Stefanie, Jakana, Joanita, Dougherty, Matthew, Fu, Caroline J., Levitt, Michael, Ludtke, Steven J., Frydman, Judith, Chiu, Wah
Formato: Texto
Lenguaje:English
Publicado: 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2834796/
https://www.ncbi.nlm.nih.gov/pubmed/20090755
http://dx.doi.org/10.1038/nature08701
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author Zhang, Junjie
Baker, Matthew L.
Schröder, Gunnar F.
Douglas, Nicholai R.
Reissmann, Stefanie
Jakana, Joanita
Dougherty, Matthew
Fu, Caroline J.
Levitt, Michael
Ludtke, Steven J.
Frydman, Judith
Chiu, Wah
author_facet Zhang, Junjie
Baker, Matthew L.
Schröder, Gunnar F.
Douglas, Nicholai R.
Reissmann, Stefanie
Jakana, Joanita
Dougherty, Matthew
Fu, Caroline J.
Levitt, Michael
Ludtke, Steven J.
Frydman, Judith
Chiu, Wah
author_sort Zhang, Junjie
collection PubMed
description Group II chaperonins are essential mediators of cellular protein folding in eukaryotes and archaea. These oligomeric protein machines, ~1MDa, consist of two back-to-back rings encompassing a central cavity that accommodates polypeptide substrates1,2,3. Chaperonin-mediated protein folding is critically dependent on the closure of a built-in lid4,5, which is triggered by ATP hydrolysis6. The structural rearrangements and molecular events leading to lid closure are still unknown. Here, we report four single particle cryo-EM structures of Mm-cpn, an archaeal group II chaperonin5,7, in the nucleotide-free (open) and nucleotide-induced (closed) states. The 4.3 Å resolution of the closed conformation allowed building of the first ever atomic model directly from the cryo-EM density map, in which we were able to visualize the nucleotide and over 70% of the sidechains. The model of the open conformation was obtained by using the deformable elastic network modeling with the 8 Å resolution open state cryo-EM density restraints. Together, the open and closed structures reveal how local conformational changes triggered by ATP hydrolysis lead to an alteration of intersubunit contacts within and across the rings, ultimately causing a rocking motion that closes the ring. Our analysis reveals an intricate and unforeseen set of interactions controlling allosteric communication and inter-ring signaling driving the conformational cycle of group II chaperonins. Beyond this, we anticipate our methodology of combining single particle cryo-EM and computational modeling will become a powerful tool in the determination of atomic details involved in the dynamic processes of macromolecular machines in solution.
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spelling pubmed-28347962010-07-21 Mechanism of Folding Chamber Closure in a Group II Chaperonin Zhang, Junjie Baker, Matthew L. Schröder, Gunnar F. Douglas, Nicholai R. Reissmann, Stefanie Jakana, Joanita Dougherty, Matthew Fu, Caroline J. Levitt, Michael Ludtke, Steven J. Frydman, Judith Chiu, Wah Nature Article Group II chaperonins are essential mediators of cellular protein folding in eukaryotes and archaea. These oligomeric protein machines, ~1MDa, consist of two back-to-back rings encompassing a central cavity that accommodates polypeptide substrates1,2,3. Chaperonin-mediated protein folding is critically dependent on the closure of a built-in lid4,5, which is triggered by ATP hydrolysis6. The structural rearrangements and molecular events leading to lid closure are still unknown. Here, we report four single particle cryo-EM structures of Mm-cpn, an archaeal group II chaperonin5,7, in the nucleotide-free (open) and nucleotide-induced (closed) states. The 4.3 Å resolution of the closed conformation allowed building of the first ever atomic model directly from the cryo-EM density map, in which we were able to visualize the nucleotide and over 70% of the sidechains. The model of the open conformation was obtained by using the deformable elastic network modeling with the 8 Å resolution open state cryo-EM density restraints. Together, the open and closed structures reveal how local conformational changes triggered by ATP hydrolysis lead to an alteration of intersubunit contacts within and across the rings, ultimately causing a rocking motion that closes the ring. Our analysis reveals an intricate and unforeseen set of interactions controlling allosteric communication and inter-ring signaling driving the conformational cycle of group II chaperonins. Beyond this, we anticipate our methodology of combining single particle cryo-EM and computational modeling will become a powerful tool in the determination of atomic details involved in the dynamic processes of macromolecular machines in solution. 2010-01-21 /pmc/articles/PMC2834796/ /pubmed/20090755 http://dx.doi.org/10.1038/nature08701 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Zhang, Junjie
Baker, Matthew L.
Schröder, Gunnar F.
Douglas, Nicholai R.
Reissmann, Stefanie
Jakana, Joanita
Dougherty, Matthew
Fu, Caroline J.
Levitt, Michael
Ludtke, Steven J.
Frydman, Judith
Chiu, Wah
Mechanism of Folding Chamber Closure in a Group II Chaperonin
title Mechanism of Folding Chamber Closure in a Group II Chaperonin
title_full Mechanism of Folding Chamber Closure in a Group II Chaperonin
title_fullStr Mechanism of Folding Chamber Closure in a Group II Chaperonin
title_full_unstemmed Mechanism of Folding Chamber Closure in a Group II Chaperonin
title_short Mechanism of Folding Chamber Closure in a Group II Chaperonin
title_sort mechanism of folding chamber closure in a group ii chaperonin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2834796/
https://www.ncbi.nlm.nih.gov/pubmed/20090755
http://dx.doi.org/10.1038/nature08701
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