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Mitotic DNA synthesis is caused by transcription-replication conflicts in BRCA2-deficient cells

Aberrant replication causes cells lacking BRCA2 to enter mitosis with under-replicated DNA, which activates a repair mechanism known as mitotic DNA synthesis (MiDAS). Here, we identify genome-wide the sites where MiDAS reactions occur when BRCA2 is abrogated. High-resolution profiling revealed that...

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Autores principales: Groelly, Florian J., Dagg, Rebecca A., Petropoulos, Michalis, Rossetti, Giacomo G., Prasad, Birbal, Panagopoulos, Andreas, Paulsen, Teressa, Karamichali, Angeliki, Jones, Samuel E., Ochs, Fena, Dionellis, Vasilis S., Puig Lombardi, Emilia, Miossec, Matthieu J., Lockstone, Helen, Legube, Gaëlle, Blackford, Andrew N., Altmeyer, Matthias, Halazonetis, Thanos D., Tarsounas, Madalena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9631240/
https://www.ncbi.nlm.nih.gov/pubmed/36002001
http://dx.doi.org/10.1016/j.molcel.2022.07.011
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author Groelly, Florian J.
Dagg, Rebecca A.
Petropoulos, Michalis
Rossetti, Giacomo G.
Prasad, Birbal
Panagopoulos, Andreas
Paulsen, Teressa
Karamichali, Angeliki
Jones, Samuel E.
Ochs, Fena
Dionellis, Vasilis S.
Puig Lombardi, Emilia
Miossec, Matthieu J.
Lockstone, Helen
Legube, Gaëlle
Blackford, Andrew N.
Altmeyer, Matthias
Halazonetis, Thanos D.
Tarsounas, Madalena
author_facet Groelly, Florian J.
Dagg, Rebecca A.
Petropoulos, Michalis
Rossetti, Giacomo G.
Prasad, Birbal
Panagopoulos, Andreas
Paulsen, Teressa
Karamichali, Angeliki
Jones, Samuel E.
Ochs, Fena
Dionellis, Vasilis S.
Puig Lombardi, Emilia
Miossec, Matthieu J.
Lockstone, Helen
Legube, Gaëlle
Blackford, Andrew N.
Altmeyer, Matthias
Halazonetis, Thanos D.
Tarsounas, Madalena
author_sort Groelly, Florian J.
collection PubMed
description Aberrant replication causes cells lacking BRCA2 to enter mitosis with under-replicated DNA, which activates a repair mechanism known as mitotic DNA synthesis (MiDAS). Here, we identify genome-wide the sites where MiDAS reactions occur when BRCA2 is abrogated. High-resolution profiling revealed that these sites are different from MiDAS at aphidicolin-induced common fragile sites in that they map to genomic regions replicating in the early S-phase, which are close to early-firing replication origins, are highly transcribed, and display R-loop-forming potential. Both transcription inhibition in early S-phase and RNaseH1 overexpression reduced MiDAS in BRCA2-deficient cells, indicating that transcription-replication conflicts (TRCs) and R-loops are the source of MiDAS. Importantly, the MiDAS sites identified in BRCA2-deficient cells also represent hotspots for genomic rearrangements in BRCA2-mutated breast tumors. Thus, our work provides a mechanism for how tumor-predisposing BRCA2 inactivation links transcription-induced DNA damage with mitotic DNA repair to fuel the genomic instability characteristic of cancer cells.
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spelling pubmed-96312402022-11-07 Mitotic DNA synthesis is caused by transcription-replication conflicts in BRCA2-deficient cells Groelly, Florian J. Dagg, Rebecca A. Petropoulos, Michalis Rossetti, Giacomo G. Prasad, Birbal Panagopoulos, Andreas Paulsen, Teressa Karamichali, Angeliki Jones, Samuel E. Ochs, Fena Dionellis, Vasilis S. Puig Lombardi, Emilia Miossec, Matthieu J. Lockstone, Helen Legube, Gaëlle Blackford, Andrew N. Altmeyer, Matthias Halazonetis, Thanos D. Tarsounas, Madalena Mol Cell Article Aberrant replication causes cells lacking BRCA2 to enter mitosis with under-replicated DNA, which activates a repair mechanism known as mitotic DNA synthesis (MiDAS). Here, we identify genome-wide the sites where MiDAS reactions occur when BRCA2 is abrogated. High-resolution profiling revealed that these sites are different from MiDAS at aphidicolin-induced common fragile sites in that they map to genomic regions replicating in the early S-phase, which are close to early-firing replication origins, are highly transcribed, and display R-loop-forming potential. Both transcription inhibition in early S-phase and RNaseH1 overexpression reduced MiDAS in BRCA2-deficient cells, indicating that transcription-replication conflicts (TRCs) and R-loops are the source of MiDAS. Importantly, the MiDAS sites identified in BRCA2-deficient cells also represent hotspots for genomic rearrangements in BRCA2-mutated breast tumors. Thus, our work provides a mechanism for how tumor-predisposing BRCA2 inactivation links transcription-induced DNA damage with mitotic DNA repair to fuel the genomic instability characteristic of cancer cells. Cell Press 2022-09-15 /pmc/articles/PMC9631240/ /pubmed/36002001 http://dx.doi.org/10.1016/j.molcel.2022.07.011 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Groelly, Florian J.
Dagg, Rebecca A.
Petropoulos, Michalis
Rossetti, Giacomo G.
Prasad, Birbal
Panagopoulos, Andreas
Paulsen, Teressa
Karamichali, Angeliki
Jones, Samuel E.
Ochs, Fena
Dionellis, Vasilis S.
Puig Lombardi, Emilia
Miossec, Matthieu J.
Lockstone, Helen
Legube, Gaëlle
Blackford, Andrew N.
Altmeyer, Matthias
Halazonetis, Thanos D.
Tarsounas, Madalena
Mitotic DNA synthesis is caused by transcription-replication conflicts in BRCA2-deficient cells
title Mitotic DNA synthesis is caused by transcription-replication conflicts in BRCA2-deficient cells
title_full Mitotic DNA synthesis is caused by transcription-replication conflicts in BRCA2-deficient cells
title_fullStr Mitotic DNA synthesis is caused by transcription-replication conflicts in BRCA2-deficient cells
title_full_unstemmed Mitotic DNA synthesis is caused by transcription-replication conflicts in BRCA2-deficient cells
title_short Mitotic DNA synthesis is caused by transcription-replication conflicts in BRCA2-deficient cells
title_sort mitotic dna synthesis is caused by transcription-replication conflicts in brca2-deficient cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9631240/
https://www.ncbi.nlm.nih.gov/pubmed/36002001
http://dx.doi.org/10.1016/j.molcel.2022.07.011
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