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Inactivation of PRIM1 Function Sensitizes Cancer Cells to ATR and CHK1 Inhibitors()

The phosphoinositide 3-kinase–related kinase ATR is a central regulator of the DNA damage response. Its chemical inhibition eliminates subsets of cancer cells in various tumor types. This effect is caused at least partly by the synthetically lethal relationship between ATR and certain DNA repair gen...

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Autores principales: Job, Albert, Schmitt, Lisa-Maria, von Wenserski, Lisa, Lankat-Buttgereit, Brigitte, Gress, Thomas M., Buchholz, Malte, Gallmeier, Eike
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Neoplasia Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6154763/
https://www.ncbi.nlm.nih.gov/pubmed/30257222
http://dx.doi.org/10.1016/j.neo.2018.08.009
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author Job, Albert
Schmitt, Lisa-Maria
von Wenserski, Lisa
Lankat-Buttgereit, Brigitte
Gress, Thomas M.
Buchholz, Malte
Gallmeier, Eike
author_facet Job, Albert
Schmitt, Lisa-Maria
von Wenserski, Lisa
Lankat-Buttgereit, Brigitte
Gress, Thomas M.
Buchholz, Malte
Gallmeier, Eike
author_sort Job, Albert
collection PubMed
description The phosphoinositide 3-kinase–related kinase ATR is a central regulator of the DNA damage response. Its chemical inhibition eliminates subsets of cancer cells in various tumor types. This effect is caused at least partly by the synthetically lethal relationship between ATR and certain DNA repair genes. In a previous screen using an siRNA library against DNA repair genes, we identified PRIM1, a part of the polymerase α-primase complex, as acting synthetically lethal with ATR. Applying a genetic ATR knock-in model of colorectal cancer cells, we confirmed that PRIM1 depletion inhibited proliferation of ATR-deficient cells and excluded artifacts due to clonal variation using an ATR reexpressing cell clone. We expanded these data by demonstrating in different cell lines that also chemical inhibition of ATR or its main effector kinase CHK1 reduces proliferation upon depletion of PRIM1. Mechanistically, PRIM1 depletion in ATR-deficient cells caused S-phase stasis in the absence of increased DNA damage followed by Wee1-mediated activation of caspase 8 and apoptosis. As PRIM1 inactivation sensitizes cancer cells to ATR and CHK1 inhibitors, mutations in PRIM1 or other components of the polymerase α-primase complex could represent novel targets for individualized tumor therapeutic approaches using ATR/CHK1 inhibitors, as has been previously demonstrated for POLD1, the catalytic subunit of polymerase δ.
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spelling pubmed-61547632018-09-26 Inactivation of PRIM1 Function Sensitizes Cancer Cells to ATR and CHK1 Inhibitors() Job, Albert Schmitt, Lisa-Maria von Wenserski, Lisa Lankat-Buttgereit, Brigitte Gress, Thomas M. Buchholz, Malte Gallmeier, Eike Neoplasia Original article The phosphoinositide 3-kinase–related kinase ATR is a central regulator of the DNA damage response. Its chemical inhibition eliminates subsets of cancer cells in various tumor types. This effect is caused at least partly by the synthetically lethal relationship between ATR and certain DNA repair genes. In a previous screen using an siRNA library against DNA repair genes, we identified PRIM1, a part of the polymerase α-primase complex, as acting synthetically lethal with ATR. Applying a genetic ATR knock-in model of colorectal cancer cells, we confirmed that PRIM1 depletion inhibited proliferation of ATR-deficient cells and excluded artifacts due to clonal variation using an ATR reexpressing cell clone. We expanded these data by demonstrating in different cell lines that also chemical inhibition of ATR or its main effector kinase CHK1 reduces proliferation upon depletion of PRIM1. Mechanistically, PRIM1 depletion in ATR-deficient cells caused S-phase stasis in the absence of increased DNA damage followed by Wee1-mediated activation of caspase 8 and apoptosis. As PRIM1 inactivation sensitizes cancer cells to ATR and CHK1 inhibitors, mutations in PRIM1 or other components of the polymerase α-primase complex could represent novel targets for individualized tumor therapeutic approaches using ATR/CHK1 inhibitors, as has been previously demonstrated for POLD1, the catalytic subunit of polymerase δ. Neoplasia Press 2018-09-23 /pmc/articles/PMC6154763/ /pubmed/30257222 http://dx.doi.org/10.1016/j.neo.2018.08.009 Text en © 2018 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original article
Job, Albert
Schmitt, Lisa-Maria
von Wenserski, Lisa
Lankat-Buttgereit, Brigitte
Gress, Thomas M.
Buchholz, Malte
Gallmeier, Eike
Inactivation of PRIM1 Function Sensitizes Cancer Cells to ATR and CHK1 Inhibitors()
title Inactivation of PRIM1 Function Sensitizes Cancer Cells to ATR and CHK1 Inhibitors()
title_full Inactivation of PRIM1 Function Sensitizes Cancer Cells to ATR and CHK1 Inhibitors()
title_fullStr Inactivation of PRIM1 Function Sensitizes Cancer Cells to ATR and CHK1 Inhibitors()
title_full_unstemmed Inactivation of PRIM1 Function Sensitizes Cancer Cells to ATR and CHK1 Inhibitors()
title_short Inactivation of PRIM1 Function Sensitizes Cancer Cells to ATR and CHK1 Inhibitors()
title_sort inactivation of prim1 function sensitizes cancer cells to atr and chk1 inhibitors()
topic Original article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6154763/
https://www.ncbi.nlm.nih.gov/pubmed/30257222
http://dx.doi.org/10.1016/j.neo.2018.08.009
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