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Doxorubicin Changes the Spatial Organization of the Genome around Active Promoters

In this study, we delve into the impact of genotoxic anticancer drug treatment on the chromatin structure of human cells, with a particular focus on the effects of doxorubicin. Using Hi-C, ChIP-seq, and RNA-seq, we explore the changes in chromatin architecture brought about by doxorubicin and ICRF19...

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Autores principales: Stefanova, Maria E., Ing-Simmons, Elizabeth, Stefanov, Stefan, Flyamer, Ilya, Dorado Garcia, Heathcliff, Schöpflin, Robert, Henssen, Anton G., Vaquerizas, Juan M., Mundlos, Stefan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10417312/
https://www.ncbi.nlm.nih.gov/pubmed/37566080
http://dx.doi.org/10.3390/cells12152001
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author Stefanova, Maria E.
Ing-Simmons, Elizabeth
Stefanov, Stefan
Flyamer, Ilya
Dorado Garcia, Heathcliff
Schöpflin, Robert
Henssen, Anton G.
Vaquerizas, Juan M.
Mundlos, Stefan
author_facet Stefanova, Maria E.
Ing-Simmons, Elizabeth
Stefanov, Stefan
Flyamer, Ilya
Dorado Garcia, Heathcliff
Schöpflin, Robert
Henssen, Anton G.
Vaquerizas, Juan M.
Mundlos, Stefan
author_sort Stefanova, Maria E.
collection PubMed
description In this study, we delve into the impact of genotoxic anticancer drug treatment on the chromatin structure of human cells, with a particular focus on the effects of doxorubicin. Using Hi-C, ChIP-seq, and RNA-seq, we explore the changes in chromatin architecture brought about by doxorubicin and ICRF193. Our results indicate that physiologically relevant doses of doxorubicin lead to a local reduction in Hi-C interactions in certain genomic regions that contain active promoters, with changes in chromatin architecture occurring independently of Top2 inhibition, cell cycle arrest, and differential gene expression. Inside the regions with decreased interactions, we detected redistribution of RAD21 around the peaks of H3K27 acetylation. Our study also revealed a common structural pattern in the regions with altered architecture, characterized by two large domains separated from each other. Additionally, doxorubicin was found to increase CTCF binding in H3K27 acetylated regions. Furthermore, we discovered that Top2-dependent chemotherapy causes changes in the distance decay of Hi-C contacts, which are driven by direct and indirect inhibitors. Our proposed model suggests that doxorubicin-induced DSBs cause cohesin redistribution, which leads to increased insulation on actively transcribed TAD boundaries. Our findings underscore the significant impact of genotoxic anticancer treatment on the chromatin structure of the human genome.
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spelling pubmed-104173122023-08-12 Doxorubicin Changes the Spatial Organization of the Genome around Active Promoters Stefanova, Maria E. Ing-Simmons, Elizabeth Stefanov, Stefan Flyamer, Ilya Dorado Garcia, Heathcliff Schöpflin, Robert Henssen, Anton G. Vaquerizas, Juan M. Mundlos, Stefan Cells Article In this study, we delve into the impact of genotoxic anticancer drug treatment on the chromatin structure of human cells, with a particular focus on the effects of doxorubicin. Using Hi-C, ChIP-seq, and RNA-seq, we explore the changes in chromatin architecture brought about by doxorubicin and ICRF193. Our results indicate that physiologically relevant doses of doxorubicin lead to a local reduction in Hi-C interactions in certain genomic regions that contain active promoters, with changes in chromatin architecture occurring independently of Top2 inhibition, cell cycle arrest, and differential gene expression. Inside the regions with decreased interactions, we detected redistribution of RAD21 around the peaks of H3K27 acetylation. Our study also revealed a common structural pattern in the regions with altered architecture, characterized by two large domains separated from each other. Additionally, doxorubicin was found to increase CTCF binding in H3K27 acetylated regions. Furthermore, we discovered that Top2-dependent chemotherapy causes changes in the distance decay of Hi-C contacts, which are driven by direct and indirect inhibitors. Our proposed model suggests that doxorubicin-induced DSBs cause cohesin redistribution, which leads to increased insulation on actively transcribed TAD boundaries. Our findings underscore the significant impact of genotoxic anticancer treatment on the chromatin structure of the human genome. MDPI 2023-08-04 /pmc/articles/PMC10417312/ /pubmed/37566080 http://dx.doi.org/10.3390/cells12152001 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Stefanova, Maria E.
Ing-Simmons, Elizabeth
Stefanov, Stefan
Flyamer, Ilya
Dorado Garcia, Heathcliff
Schöpflin, Robert
Henssen, Anton G.
Vaquerizas, Juan M.
Mundlos, Stefan
Doxorubicin Changes the Spatial Organization of the Genome around Active Promoters
title Doxorubicin Changes the Spatial Organization of the Genome around Active Promoters
title_full Doxorubicin Changes the Spatial Organization of the Genome around Active Promoters
title_fullStr Doxorubicin Changes the Spatial Organization of the Genome around Active Promoters
title_full_unstemmed Doxorubicin Changes the Spatial Organization of the Genome around Active Promoters
title_short Doxorubicin Changes the Spatial Organization of the Genome around Active Promoters
title_sort doxorubicin changes the spatial organization of the genome around active promoters
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10417312/
https://www.ncbi.nlm.nih.gov/pubmed/37566080
http://dx.doi.org/10.3390/cells12152001
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