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DNAJC9 integrates heat shock molecular chaperones into the histone chaperone network

From biosynthesis to assembly into nucleosomes, histones are handed through a cascade of histone chaperones, which shield histones from non-specific interactions. Whether mechanisms exist to safeguard the histone fold during histone chaperone handover events or to release trapped intermediates is un...

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Autores principales: Hammond, Colin M., Bao, Hongyu, Hendriks, Ivo A., Carraro, Massimo, García-Nieto, Alberto, Liu, Yanhong, Reverón-Gómez, Nazaret, Spanos, Christos, Chen, Liu, Rappsilber, Juri, Nielsen, Michael L., Patel, Dinshaw J., Huang, Hongda, Groth, Anja
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8221569/
https://www.ncbi.nlm.nih.gov/pubmed/33857403
http://dx.doi.org/10.1016/j.molcel.2021.03.041
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author Hammond, Colin M.
Bao, Hongyu
Hendriks, Ivo A.
Carraro, Massimo
García-Nieto, Alberto
Liu, Yanhong
Reverón-Gómez, Nazaret
Spanos, Christos
Chen, Liu
Rappsilber, Juri
Nielsen, Michael L.
Patel, Dinshaw J.
Huang, Hongda
Groth, Anja
author_facet Hammond, Colin M.
Bao, Hongyu
Hendriks, Ivo A.
Carraro, Massimo
García-Nieto, Alberto
Liu, Yanhong
Reverón-Gómez, Nazaret
Spanos, Christos
Chen, Liu
Rappsilber, Juri
Nielsen, Michael L.
Patel, Dinshaw J.
Huang, Hongda
Groth, Anja
author_sort Hammond, Colin M.
collection PubMed
description From biosynthesis to assembly into nucleosomes, histones are handed through a cascade of histone chaperones, which shield histones from non-specific interactions. Whether mechanisms exist to safeguard the histone fold during histone chaperone handover events or to release trapped intermediates is unclear. Using structure-guided and functional proteomics, we identify and characterize a histone chaperone function of DNAJC9, a heat shock co-chaperone that promotes HSP70-mediated catalysis. We elucidate the structure of DNAJC9, in a histone H3-H4 co-chaperone complex with MCM2, revealing how this dual histone and heat shock co-chaperone binds histone substrates. We show that DNAJC9 recruits HSP70-type enzymes via its J domain to fold histone H3-H4 substrates: upstream in the histone supply chain, during replication- and transcription-coupled nucleosome assembly, and to clean up spurious interactions. With its dual functionality, DNAJC9 integrates ATP-resourced protein folding into the histone supply pathway to resolve aberrant intermediates throughout the dynamic lives of histones.
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spelling pubmed-82215692021-06-29 DNAJC9 integrates heat shock molecular chaperones into the histone chaperone network Hammond, Colin M. Bao, Hongyu Hendriks, Ivo A. Carraro, Massimo García-Nieto, Alberto Liu, Yanhong Reverón-Gómez, Nazaret Spanos, Christos Chen, Liu Rappsilber, Juri Nielsen, Michael L. Patel, Dinshaw J. Huang, Hongda Groth, Anja Mol Cell Article From biosynthesis to assembly into nucleosomes, histones are handed through a cascade of histone chaperones, which shield histones from non-specific interactions. Whether mechanisms exist to safeguard the histone fold during histone chaperone handover events or to release trapped intermediates is unclear. Using structure-guided and functional proteomics, we identify and characterize a histone chaperone function of DNAJC9, a heat shock co-chaperone that promotes HSP70-mediated catalysis. We elucidate the structure of DNAJC9, in a histone H3-H4 co-chaperone complex with MCM2, revealing how this dual histone and heat shock co-chaperone binds histone substrates. We show that DNAJC9 recruits HSP70-type enzymes via its J domain to fold histone H3-H4 substrates: upstream in the histone supply chain, during replication- and transcription-coupled nucleosome assembly, and to clean up spurious interactions. With its dual functionality, DNAJC9 integrates ATP-resourced protein folding into the histone supply pathway to resolve aberrant intermediates throughout the dynamic lives of histones. Cell Press 2021-06-17 /pmc/articles/PMC8221569/ /pubmed/33857403 http://dx.doi.org/10.1016/j.molcel.2021.03.041 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hammond, Colin M.
Bao, Hongyu
Hendriks, Ivo A.
Carraro, Massimo
García-Nieto, Alberto
Liu, Yanhong
Reverón-Gómez, Nazaret
Spanos, Christos
Chen, Liu
Rappsilber, Juri
Nielsen, Michael L.
Patel, Dinshaw J.
Huang, Hongda
Groth, Anja
DNAJC9 integrates heat shock molecular chaperones into the histone chaperone network
title DNAJC9 integrates heat shock molecular chaperones into the histone chaperone network
title_full DNAJC9 integrates heat shock molecular chaperones into the histone chaperone network
title_fullStr DNAJC9 integrates heat shock molecular chaperones into the histone chaperone network
title_full_unstemmed DNAJC9 integrates heat shock molecular chaperones into the histone chaperone network
title_short DNAJC9 integrates heat shock molecular chaperones into the histone chaperone network
title_sort dnajc9 integrates heat shock molecular chaperones into the histone chaperone network
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8221569/
https://www.ncbi.nlm.nih.gov/pubmed/33857403
http://dx.doi.org/10.1016/j.molcel.2021.03.041
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