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A phylogenetic and proteomic reconstruction of eukaryotic chromatin evolution

Histones and associated chromatin proteins have essential functions in eukaryotic genome organization and regulation. Despite this fundamental role in eukaryotic cell biology, we lack a phylogenetically-comprehensive understanding of chromatin evolution. Here, we combine comparative proteomics and g...

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Autores principales: Grau-Bové, Xavier, Navarrete, Cristina, Chiva, Cristina, Pribasnig, Thomas, Antó, Meritxell, Torruella, Guifré, Galindo, Luis Javier, Lang, Bernd Franz, Moreira, David, López-Garcia, Purificación, Ruiz-Trillo, Iñaki, Schleper, Christa, Sabidó, Eduard, Sebé-Pedrós, Arnau
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7613034/
https://www.ncbi.nlm.nih.gov/pubmed/35680998
http://dx.doi.org/10.1038/s41559-022-01771-6
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author Grau-Bové, Xavier
Navarrete, Cristina
Chiva, Cristina
Pribasnig, Thomas
Antó, Meritxell
Torruella, Guifré
Galindo, Luis Javier
Lang, Bernd Franz
Moreira, David
López-Garcia, Purificación
Ruiz-Trillo, Iñaki
Schleper, Christa
Sabidó, Eduard
Sebé-Pedrós, Arnau
author_facet Grau-Bové, Xavier
Navarrete, Cristina
Chiva, Cristina
Pribasnig, Thomas
Antó, Meritxell
Torruella, Guifré
Galindo, Luis Javier
Lang, Bernd Franz
Moreira, David
López-Garcia, Purificación
Ruiz-Trillo, Iñaki
Schleper, Christa
Sabidó, Eduard
Sebé-Pedrós, Arnau
author_sort Grau-Bové, Xavier
collection PubMed
description Histones and associated chromatin proteins have essential functions in eukaryotic genome organization and regulation. Despite this fundamental role in eukaryotic cell biology, we lack a phylogenetically-comprehensive understanding of chromatin evolution. Here, we combine comparative proteomics and genomics analysis of chromatin in eukaryotes and archaea. Proteomics uncovers the existence of histone post-translational modifications in Archaea. However, archaeal histone modifications are scarce, in contrast with the highly conserved and abundant marks we identify across eukaryotes. Phylogenetic analysis reveals that chromatin-associated catalytic functions (e.g., methyltransferases) have pre-eukaryotic origins, whereas histone mark readers and chaperones are eukaryotic innovations. We show that further chromatin evolution is characterized by expansion of readers, including capture by transposable elements and viruses. Overall, our study infers detailed evolutionary history of eukaryotic chromatin: from its archaeal roots, through the emergence of nucleosome-based regulation in the eukaryotic ancestor, to the diversification of chromatin regulators and their hijacking by genomic parasites.
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spelling pubmed-76130342022-10-09 A phylogenetic and proteomic reconstruction of eukaryotic chromatin evolution Grau-Bové, Xavier Navarrete, Cristina Chiva, Cristina Pribasnig, Thomas Antó, Meritxell Torruella, Guifré Galindo, Luis Javier Lang, Bernd Franz Moreira, David López-Garcia, Purificación Ruiz-Trillo, Iñaki Schleper, Christa Sabidó, Eduard Sebé-Pedrós, Arnau Nat Ecol Evol Article Histones and associated chromatin proteins have essential functions in eukaryotic genome organization and regulation. Despite this fundamental role in eukaryotic cell biology, we lack a phylogenetically-comprehensive understanding of chromatin evolution. Here, we combine comparative proteomics and genomics analysis of chromatin in eukaryotes and archaea. Proteomics uncovers the existence of histone post-translational modifications in Archaea. However, archaeal histone modifications are scarce, in contrast with the highly conserved and abundant marks we identify across eukaryotes. Phylogenetic analysis reveals that chromatin-associated catalytic functions (e.g., methyltransferases) have pre-eukaryotic origins, whereas histone mark readers and chaperones are eukaryotic innovations. We show that further chromatin evolution is characterized by expansion of readers, including capture by transposable elements and viruses. Overall, our study infers detailed evolutionary history of eukaryotic chromatin: from its archaeal roots, through the emergence of nucleosome-based regulation in the eukaryotic ancestor, to the diversification of chromatin regulators and their hijacking by genomic parasites. 2022-07 2022-06-09 /pmc/articles/PMC7613034/ /pubmed/35680998 http://dx.doi.org/10.1038/s41559-022-01771-6 Text en https://www.springernature.com/gp/open-research/policies/accepted-manuscript-termsUsers may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: https://www.springernature.com/gp/open-research/policies/accepted-manuscript-terms
spellingShingle Article
Grau-Bové, Xavier
Navarrete, Cristina
Chiva, Cristina
Pribasnig, Thomas
Antó, Meritxell
Torruella, Guifré
Galindo, Luis Javier
Lang, Bernd Franz
Moreira, David
López-Garcia, Purificación
Ruiz-Trillo, Iñaki
Schleper, Christa
Sabidó, Eduard
Sebé-Pedrós, Arnau
A phylogenetic and proteomic reconstruction of eukaryotic chromatin evolution
title A phylogenetic and proteomic reconstruction of eukaryotic chromatin evolution
title_full A phylogenetic and proteomic reconstruction of eukaryotic chromatin evolution
title_fullStr A phylogenetic and proteomic reconstruction of eukaryotic chromatin evolution
title_full_unstemmed A phylogenetic and proteomic reconstruction of eukaryotic chromatin evolution
title_short A phylogenetic and proteomic reconstruction of eukaryotic chromatin evolution
title_sort phylogenetic and proteomic reconstruction of eukaryotic chromatin evolution
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7613034/
https://www.ncbi.nlm.nih.gov/pubmed/35680998
http://dx.doi.org/10.1038/s41559-022-01771-6
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