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Writers and readers of H3K9me2 form distinct protein networks during the cell cycle that include candidates for H3K9 mimicry

Histone H3 lysine 9 methylation (H3K9me), which is written by the Euchromatic Histone Lysine Methyltransferases EHMT1 and EHMT2 and read by the heterochromatin protein 1 (HP1) chromobox (CBX) protein family, is dysregulated in many types of cancers. Approaches to inhibit regulators of this pathway a...

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Autores principales: Pollin, Gareth, De Assuncao, Thiago M., Doria Jorge, Salomao, Chi, Young-In, Charlesworth, M. Cristine, Madden, Benjamin, Iovanna, Juan, Zimmermann, Michael T., Urrutia, Raul, Lomberk, Gwen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10611923/
https://www.ncbi.nlm.nih.gov/pubmed/37782747
http://dx.doi.org/10.1042/BSR20231093
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author Pollin, Gareth
De Assuncao, Thiago M.
Doria Jorge, Salomao
Chi, Young-In
Charlesworth, M. Cristine
Madden, Benjamin
Iovanna, Juan
Zimmermann, Michael T.
Urrutia, Raul
Lomberk, Gwen
author_facet Pollin, Gareth
De Assuncao, Thiago M.
Doria Jorge, Salomao
Chi, Young-In
Charlesworth, M. Cristine
Madden, Benjamin
Iovanna, Juan
Zimmermann, Michael T.
Urrutia, Raul
Lomberk, Gwen
author_sort Pollin, Gareth
collection PubMed
description Histone H3 lysine 9 methylation (H3K9me), which is written by the Euchromatic Histone Lysine Methyltransferases EHMT1 and EHMT2 and read by the heterochromatin protein 1 (HP1) chromobox (CBX) protein family, is dysregulated in many types of cancers. Approaches to inhibit regulators of this pathway are currently being evaluated for therapeutic purposes. Thus, knowledge of the complexes supporting the function of these writers and readers during the process of cell proliferation is critical for our understanding of their role in carcinogenesis. Here, we immunopurified each of these proteins and used mass spectrometry to define their associated non-histone proteins, individually and at two different phases of the cell cycle, namely G1/S and G2/M. Our findings identify novel binding proteins for these writers and readers, as well as corroborate known interactors, to show the formation of distinct protein complex networks in a cell cycle phase-specific manner. Furthermore, there is an organizational switch between cell cycle phases for interactions among specific writer–reader pairs. Through a multi-tiered bioinformatics-based approach, we reveal that many interacting proteins exhibit histone mimicry, based on an H3K9-like linear motif. Gene ontology analyses, pathway enrichment, and network reconstruction inferred that these comprehensive EHMT and CBX-associated interacting protein networks participate in various functions, including transcription, DNA repair, splicing, and membrane disassembly. Combined, our data reveals novel complexes that provide insight into key functions of cell cycle-associated epigenomic processes that are highly relevant for better understanding these chromatin-modifying proteins during cell cycle and carcinogenesis.
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spelling pubmed-106119232023-10-29 Writers and readers of H3K9me2 form distinct protein networks during the cell cycle that include candidates for H3K9 mimicry Pollin, Gareth De Assuncao, Thiago M. Doria Jorge, Salomao Chi, Young-In Charlesworth, M. Cristine Madden, Benjamin Iovanna, Juan Zimmermann, Michael T. Urrutia, Raul Lomberk, Gwen Biosci Rep Cell Cycle, Growth & Proliferation Histone H3 lysine 9 methylation (H3K9me), which is written by the Euchromatic Histone Lysine Methyltransferases EHMT1 and EHMT2 and read by the heterochromatin protein 1 (HP1) chromobox (CBX) protein family, is dysregulated in many types of cancers. Approaches to inhibit regulators of this pathway are currently being evaluated for therapeutic purposes. Thus, knowledge of the complexes supporting the function of these writers and readers during the process of cell proliferation is critical for our understanding of their role in carcinogenesis. Here, we immunopurified each of these proteins and used mass spectrometry to define their associated non-histone proteins, individually and at two different phases of the cell cycle, namely G1/S and G2/M. Our findings identify novel binding proteins for these writers and readers, as well as corroborate known interactors, to show the formation of distinct protein complex networks in a cell cycle phase-specific manner. Furthermore, there is an organizational switch between cell cycle phases for interactions among specific writer–reader pairs. Through a multi-tiered bioinformatics-based approach, we reveal that many interacting proteins exhibit histone mimicry, based on an H3K9-like linear motif. Gene ontology analyses, pathway enrichment, and network reconstruction inferred that these comprehensive EHMT and CBX-associated interacting protein networks participate in various functions, including transcription, DNA repair, splicing, and membrane disassembly. Combined, our data reveals novel complexes that provide insight into key functions of cell cycle-associated epigenomic processes that are highly relevant for better understanding these chromatin-modifying proteins during cell cycle and carcinogenesis. Portland Press Ltd. 2023-10-27 /pmc/articles/PMC10611923/ /pubmed/37782747 http://dx.doi.org/10.1042/BSR20231093 Text en © 2023 The Author(s). https://creativecommons.org/licenses/by/4.0/This is an open access article published by Portland Press Limited on behalf of the Biochemical Society and distributed under the Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Cell Cycle, Growth & Proliferation
Pollin, Gareth
De Assuncao, Thiago M.
Doria Jorge, Salomao
Chi, Young-In
Charlesworth, M. Cristine
Madden, Benjamin
Iovanna, Juan
Zimmermann, Michael T.
Urrutia, Raul
Lomberk, Gwen
Writers and readers of H3K9me2 form distinct protein networks during the cell cycle that include candidates for H3K9 mimicry
title Writers and readers of H3K9me2 form distinct protein networks during the cell cycle that include candidates for H3K9 mimicry
title_full Writers and readers of H3K9me2 form distinct protein networks during the cell cycle that include candidates for H3K9 mimicry
title_fullStr Writers and readers of H3K9me2 form distinct protein networks during the cell cycle that include candidates for H3K9 mimicry
title_full_unstemmed Writers and readers of H3K9me2 form distinct protein networks during the cell cycle that include candidates for H3K9 mimicry
title_short Writers and readers of H3K9me2 form distinct protein networks during the cell cycle that include candidates for H3K9 mimicry
title_sort writers and readers of h3k9me2 form distinct protein networks during the cell cycle that include candidates for h3k9 mimicry
topic Cell Cycle, Growth & Proliferation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10611923/
https://www.ncbi.nlm.nih.gov/pubmed/37782747
http://dx.doi.org/10.1042/BSR20231093
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