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SUMOylation of HP1α supports association with ncRNA to define responsiveness of breast cancer cells to chemotherapy

Epigenetic reprogramming allows cancer cells to bypass normal checkpoints and potentiate aberrant proliferation. Several chromatin regulators are subject to reversible SUMO-modification but little is known about how SUMOylation of chromatin-remodelers modulates the cancer epigenome. Recently, we dem...

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Autores principales: Lin, Feng-Ming, Kumar, Santosh, Ren, Jing, Karami, Samaneh, Bahnassy, Shaymaa, Li, Yue, Zheng, Xiaofeng, Wang, Jing, Bawa-Khalfe, Tasneem
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5058684/
https://www.ncbi.nlm.nih.gov/pubmed/27107417
http://dx.doi.org/10.18632/oncotarget.8733
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author Lin, Feng-Ming
Kumar, Santosh
Ren, Jing
Karami, Samaneh
Bahnassy, Shaymaa
Li, Yue
Zheng, Xiaofeng
Wang, Jing
Bawa-Khalfe, Tasneem
author_facet Lin, Feng-Ming
Kumar, Santosh
Ren, Jing
Karami, Samaneh
Bahnassy, Shaymaa
Li, Yue
Zheng, Xiaofeng
Wang, Jing
Bawa-Khalfe, Tasneem
author_sort Lin, Feng-Ming
collection PubMed
description Epigenetic reprogramming allows cancer cells to bypass normal checkpoints and potentiate aberrant proliferation. Several chromatin regulators are subject to reversible SUMO-modification but little is known about how SUMOylation of chromatin-remodelers modulates the cancer epigenome. Recently, we demonstrated that SUMO-protease SENP7L is upregulated in aggressive BCa and maintains hypoSUMOylated heterochromatin protein 1-α (HP1α). Canonical models define HP1α as a “reader” of repressive H3K9m3 marks that supports constitutive heterochromatin. It is unclear how SUMOylation affects HP1α function in BCa cells. This report shows HP1α SUMO-dynamics are closely regulated in a complex with SENP7L and SUMO-E3 Polycomb-2 (PC2/CBX4). This complex accumulates at H3K9m3 sites, hypoSUMOylates HP1α and PC2, and reduces PC2's SUMO-E3 activity. HyperSUMO conditions cause complex dissociation, SUMOylation of PC2 and HP1α, and recruitment of SUMOylated HP1α to multiple DNA-repair genes including Rad51C. SUMOylated HP1α's enrichment at euchromatin requires chromatin-bound non-coding RNA (ncRNA), reduces Rad51C protein, and increases DNA-breaks in BCa cells. Hence, HP1α SUMOylation and consistently low SENP7L increase efficacy of DNA-damaging chemotherapeutic agents. BCa patients on chemotherapy that express low SENP7L exhibit greater survival rates than patients with high SENP7L. Collectively, these studies suggest that SUMOylated HP1α is a critical epigenetic-regulator of DNA-repair in BCa that could define chemotherapy responsiveness.
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spelling pubmed-50586842016-10-15 SUMOylation of HP1α supports association with ncRNA to define responsiveness of breast cancer cells to chemotherapy Lin, Feng-Ming Kumar, Santosh Ren, Jing Karami, Samaneh Bahnassy, Shaymaa Li, Yue Zheng, Xiaofeng Wang, Jing Bawa-Khalfe, Tasneem Oncotarget Research Paper Epigenetic reprogramming allows cancer cells to bypass normal checkpoints and potentiate aberrant proliferation. Several chromatin regulators are subject to reversible SUMO-modification but little is known about how SUMOylation of chromatin-remodelers modulates the cancer epigenome. Recently, we demonstrated that SUMO-protease SENP7L is upregulated in aggressive BCa and maintains hypoSUMOylated heterochromatin protein 1-α (HP1α). Canonical models define HP1α as a “reader” of repressive H3K9m3 marks that supports constitutive heterochromatin. It is unclear how SUMOylation affects HP1α function in BCa cells. This report shows HP1α SUMO-dynamics are closely regulated in a complex with SENP7L and SUMO-E3 Polycomb-2 (PC2/CBX4). This complex accumulates at H3K9m3 sites, hypoSUMOylates HP1α and PC2, and reduces PC2's SUMO-E3 activity. HyperSUMO conditions cause complex dissociation, SUMOylation of PC2 and HP1α, and recruitment of SUMOylated HP1α to multiple DNA-repair genes including Rad51C. SUMOylated HP1α's enrichment at euchromatin requires chromatin-bound non-coding RNA (ncRNA), reduces Rad51C protein, and increases DNA-breaks in BCa cells. Hence, HP1α SUMOylation and consistently low SENP7L increase efficacy of DNA-damaging chemotherapeutic agents. BCa patients on chemotherapy that express low SENP7L exhibit greater survival rates than patients with high SENP7L. Collectively, these studies suggest that SUMOylated HP1α is a critical epigenetic-regulator of DNA-repair in BCa that could define chemotherapy responsiveness. Impact Journals LLC 2016-04-14 /pmc/articles/PMC5058684/ /pubmed/27107417 http://dx.doi.org/10.18632/oncotarget.8733 Text en Copyright: © 2016 Lin et al. http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Lin, Feng-Ming
Kumar, Santosh
Ren, Jing
Karami, Samaneh
Bahnassy, Shaymaa
Li, Yue
Zheng, Xiaofeng
Wang, Jing
Bawa-Khalfe, Tasneem
SUMOylation of HP1α supports association with ncRNA to define responsiveness of breast cancer cells to chemotherapy
title SUMOylation of HP1α supports association with ncRNA to define responsiveness of breast cancer cells to chemotherapy
title_full SUMOylation of HP1α supports association with ncRNA to define responsiveness of breast cancer cells to chemotherapy
title_fullStr SUMOylation of HP1α supports association with ncRNA to define responsiveness of breast cancer cells to chemotherapy
title_full_unstemmed SUMOylation of HP1α supports association with ncRNA to define responsiveness of breast cancer cells to chemotherapy
title_short SUMOylation of HP1α supports association with ncRNA to define responsiveness of breast cancer cells to chemotherapy
title_sort sumoylation of hp1α supports association with ncrna to define responsiveness of breast cancer cells to chemotherapy
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5058684/
https://www.ncbi.nlm.nih.gov/pubmed/27107417
http://dx.doi.org/10.18632/oncotarget.8733
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