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DNA polymerase κ-dependent DNA synthesis at stalled replication forks is important for CHK1 activation

Formation of primed single-stranded DNA at stalled replication forks triggers activation of the replication checkpoint signalling cascade resulting in the ATR-mediated phosphorylation of the Chk1 protein kinase, thus preventing genomic instability. By using siRNA-mediated depletion in human cells an...

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Detalles Bibliográficos
Autores principales: Bétous, Rémy, Pillaire, Marie-Jeanne, Pierini, Laura, van der Laan, Siem, Recolin, Bénédicte, Ohl-Séguy, Emma, Guo, Caixia, Niimi, Naoko, Grúz, Petr, Nohmi, Takehiko, Friedberg, Errol, Cazaux, Christophe, Maiorano, Domenico, Hoffmann, Jean-Sébastien
Formato: Online Artículo Texto
Lenguaje:English
Publicado: European Molecular Biology Organization 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3730229/
https://www.ncbi.nlm.nih.gov/pubmed/23799366
http://dx.doi.org/10.1038/emboj.2013.148
Descripción
Sumario:Formation of primed single-stranded DNA at stalled replication forks triggers activation of the replication checkpoint signalling cascade resulting in the ATR-mediated phosphorylation of the Chk1 protein kinase, thus preventing genomic instability. By using siRNA-mediated depletion in human cells and immunodepletion and reconstitution experiments in Xenopus egg extracts, we report that the Y-family translesion (TLS) DNA polymerase kappa (Pol κ) contributes to the replication checkpoint response and is required for recovery after replication stress. We found that Pol κ is implicated in the synthesis of short DNA intermediates at stalled forks, facilitating the recruitment of the 9-1-1 checkpoint clamp. Furthermore, we show that Pol κ interacts with the Rad9 subunit of the 9-1-1 complex. Finally, we show that this novel checkpoint function of Pol κ is required for the maintenance of genomic stability and cell proliferation in unstressed human cells.