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Solution structure of the isolated histone H2A-H2B heterodimer

During chromatin-regulated processes, the histone H2A-H2B heterodimer functions dynamically in and out of the nucleosome. Although detailed crystal structures of nucleosomes have been established, that of the isolated full-length H2A-H2B heterodimer has remained elusive. Here, we have determined the...

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Autores principales: Moriwaki, Yoshihito, Yamane, Tsutomu, Ohtomo, Hideaki, Ikeguchi, Mitsunori, Kurita, Jun-ichi, Sato, Masahiko, Nagadoi, Aritaka, Shimojo, Hideaki, Nishimura, Yoshifumi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4867618/
https://www.ncbi.nlm.nih.gov/pubmed/27181506
http://dx.doi.org/10.1038/srep24999
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author Moriwaki, Yoshihito
Yamane, Tsutomu
Ohtomo, Hideaki
Ikeguchi, Mitsunori
Kurita, Jun-ichi
Sato, Masahiko
Nagadoi, Aritaka
Shimojo, Hideaki
Nishimura, Yoshifumi
author_facet Moriwaki, Yoshihito
Yamane, Tsutomu
Ohtomo, Hideaki
Ikeguchi, Mitsunori
Kurita, Jun-ichi
Sato, Masahiko
Nagadoi, Aritaka
Shimojo, Hideaki
Nishimura, Yoshifumi
author_sort Moriwaki, Yoshihito
collection PubMed
description During chromatin-regulated processes, the histone H2A-H2B heterodimer functions dynamically in and out of the nucleosome. Although detailed crystal structures of nucleosomes have been established, that of the isolated full-length H2A-H2B heterodimer has remained elusive. Here, we have determined the solution structure of human H2A-H2B by NMR coupled with CS-Rosetta. H2A and H2B each contain a histone fold, comprising four α-helices and two β-strands (α(1)–β(1)–α(2)–β(2)–α(3)–α(C)), together with the long disordered N- and C-terminal H2A tails and the long N-terminal H2B tail. The N-terminal α(N) helix, C-terminal β(3) strand, and 3(10) helix of H2A observed in the H2A-H2B nucleosome structure are disordered in isolated H2A-H2B. In addition, the H2A α(1) and H2B α(C) helices are not well fixed in the heterodimer, and the H2A and H2B tails are not completely random coils. Comparison of hydrogen-deuterium exchange, fast hydrogen exchange, and {(1)H}-(15)N hetero-nuclear NOE data with the CS-Rosetta structure indicates that there is some conformation in the H2A 3(10) helical and H2B Lys11 regions, while the repression domain of H2B (residues 27–34) exhibits an extended string-like structure. This first structure of the isolated H2A-H2B heterodimer provides insight into its dynamic functions in chromatin.
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spelling pubmed-48676182016-05-31 Solution structure of the isolated histone H2A-H2B heterodimer Moriwaki, Yoshihito Yamane, Tsutomu Ohtomo, Hideaki Ikeguchi, Mitsunori Kurita, Jun-ichi Sato, Masahiko Nagadoi, Aritaka Shimojo, Hideaki Nishimura, Yoshifumi Sci Rep Article During chromatin-regulated processes, the histone H2A-H2B heterodimer functions dynamically in and out of the nucleosome. Although detailed crystal structures of nucleosomes have been established, that of the isolated full-length H2A-H2B heterodimer has remained elusive. Here, we have determined the solution structure of human H2A-H2B by NMR coupled with CS-Rosetta. H2A and H2B each contain a histone fold, comprising four α-helices and two β-strands (α(1)–β(1)–α(2)–β(2)–α(3)–α(C)), together with the long disordered N- and C-terminal H2A tails and the long N-terminal H2B tail. The N-terminal α(N) helix, C-terminal β(3) strand, and 3(10) helix of H2A observed in the H2A-H2B nucleosome structure are disordered in isolated H2A-H2B. In addition, the H2A α(1) and H2B α(C) helices are not well fixed in the heterodimer, and the H2A and H2B tails are not completely random coils. Comparison of hydrogen-deuterium exchange, fast hydrogen exchange, and {(1)H}-(15)N hetero-nuclear NOE data with the CS-Rosetta structure indicates that there is some conformation in the H2A 3(10) helical and H2B Lys11 regions, while the repression domain of H2B (residues 27–34) exhibits an extended string-like structure. This first structure of the isolated H2A-H2B heterodimer provides insight into its dynamic functions in chromatin. Nature Publishing Group 2016-05-16 /pmc/articles/PMC4867618/ /pubmed/27181506 http://dx.doi.org/10.1038/srep24999 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Moriwaki, Yoshihito
Yamane, Tsutomu
Ohtomo, Hideaki
Ikeguchi, Mitsunori
Kurita, Jun-ichi
Sato, Masahiko
Nagadoi, Aritaka
Shimojo, Hideaki
Nishimura, Yoshifumi
Solution structure of the isolated histone H2A-H2B heterodimer
title Solution structure of the isolated histone H2A-H2B heterodimer
title_full Solution structure of the isolated histone H2A-H2B heterodimer
title_fullStr Solution structure of the isolated histone H2A-H2B heterodimer
title_full_unstemmed Solution structure of the isolated histone H2A-H2B heterodimer
title_short Solution structure of the isolated histone H2A-H2B heterodimer
title_sort solution structure of the isolated histone h2a-h2b heterodimer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4867618/
https://www.ncbi.nlm.nih.gov/pubmed/27181506
http://dx.doi.org/10.1038/srep24999
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