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PLK1 targets NOTCH1 during DNA damage and mitotic progression

Notch signaling plays a complex role in carcinogenesis, and its signaling pathway has both tumor suppressor and oncogenic components. To identify regulators that might control this dual activity of NOTCH1, we screened a chemical library targeting kinases and identified Polo-like kinase 1 (PLK1) as o...

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Autores principales: De Blasio, Carlo, Zonfrilli, Azzurra, Franchitto, Matteo, Mariano, Germano, Cialfi, Samantha, Verma, Nagendra, Checquolo, Saula, Bellavia, Diana, Palermo, Rocco, Benelli, Dario, Screpanti, Isabella, Talora, Claudio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6879332/
https://www.ncbi.nlm.nih.gov/pubmed/31597699
http://dx.doi.org/10.1074/jbc.RA119.009881
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author De Blasio, Carlo
Zonfrilli, Azzurra
Franchitto, Matteo
Mariano, Germano
Cialfi, Samantha
Verma, Nagendra
Checquolo, Saula
Bellavia, Diana
Palermo, Rocco
Benelli, Dario
Screpanti, Isabella
Talora, Claudio
author_facet De Blasio, Carlo
Zonfrilli, Azzurra
Franchitto, Matteo
Mariano, Germano
Cialfi, Samantha
Verma, Nagendra
Checquolo, Saula
Bellavia, Diana
Palermo, Rocco
Benelli, Dario
Screpanti, Isabella
Talora, Claudio
author_sort De Blasio, Carlo
collection PubMed
description Notch signaling plays a complex role in carcinogenesis, and its signaling pathway has both tumor suppressor and oncogenic components. To identify regulators that might control this dual activity of NOTCH1, we screened a chemical library targeting kinases and identified Polo-like kinase 1 (PLK1) as one of the kinases involved in arsenite-induced NOTCH1 down-modulation. As PLK1 activity drives mitotic entry but also is inhibited after DNA damage, we investigated the PLK1-NOTCH1 interplay in the G(2) phase of the cell cycle and in response to DNA damage. Here, we found that PLK1 regulates NOTCH1 expression at G(2)/M transition. However, when cells in G(2) phase are challenged with DNA damage, PLK1 is inhibited to prevent entry into mitosis. Interestingly, we found that the interaction between NOTCH1 and PLK1 is functionally important during the DNA damage response, as we found that whereas PLK1 activity is inhibited, NOTCH1 expression is maintained during DNA damage response. During genotoxic stress, cellular transformation requires that promitotic activity must override DNA damage checkpoint signaling to drive proliferation. Interestingly, we found that arsenite-induced genotoxic stress causes a PLK1-dependent signaling response that antagonizes the involvement of NOTCH1 in the DNA damage checkpoint. Taken together, our data provide evidence that Notch signaling is altered but not abolished in SCC cells. Thus, it is also important to recognize that Notch plasticity might be modulated and could represent a key determinant to switch on/off either the oncogenic or tumor suppressor function of Notch signaling in a single type of tumor.
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spelling pubmed-68793322019-11-27 PLK1 targets NOTCH1 during DNA damage and mitotic progression De Blasio, Carlo Zonfrilli, Azzurra Franchitto, Matteo Mariano, Germano Cialfi, Samantha Verma, Nagendra Checquolo, Saula Bellavia, Diana Palermo, Rocco Benelli, Dario Screpanti, Isabella Talora, Claudio J Biol Chem Cell Biology Notch signaling plays a complex role in carcinogenesis, and its signaling pathway has both tumor suppressor and oncogenic components. To identify regulators that might control this dual activity of NOTCH1, we screened a chemical library targeting kinases and identified Polo-like kinase 1 (PLK1) as one of the kinases involved in arsenite-induced NOTCH1 down-modulation. As PLK1 activity drives mitotic entry but also is inhibited after DNA damage, we investigated the PLK1-NOTCH1 interplay in the G(2) phase of the cell cycle and in response to DNA damage. Here, we found that PLK1 regulates NOTCH1 expression at G(2)/M transition. However, when cells in G(2) phase are challenged with DNA damage, PLK1 is inhibited to prevent entry into mitosis. Interestingly, we found that the interaction between NOTCH1 and PLK1 is functionally important during the DNA damage response, as we found that whereas PLK1 activity is inhibited, NOTCH1 expression is maintained during DNA damage response. During genotoxic stress, cellular transformation requires that promitotic activity must override DNA damage checkpoint signaling to drive proliferation. Interestingly, we found that arsenite-induced genotoxic stress causes a PLK1-dependent signaling response that antagonizes the involvement of NOTCH1 in the DNA damage checkpoint. Taken together, our data provide evidence that Notch signaling is altered but not abolished in SCC cells. Thus, it is also important to recognize that Notch plasticity might be modulated and could represent a key determinant to switch on/off either the oncogenic or tumor suppressor function of Notch signaling in a single type of tumor. American Society for Biochemistry and Molecular Biology 2019-11-22 2019-10-09 /pmc/articles/PMC6879332/ /pubmed/31597699 http://dx.doi.org/10.1074/jbc.RA119.009881 Text en © 2019 De Blasio et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Cell Biology
De Blasio, Carlo
Zonfrilli, Azzurra
Franchitto, Matteo
Mariano, Germano
Cialfi, Samantha
Verma, Nagendra
Checquolo, Saula
Bellavia, Diana
Palermo, Rocco
Benelli, Dario
Screpanti, Isabella
Talora, Claudio
PLK1 targets NOTCH1 during DNA damage and mitotic progression
title PLK1 targets NOTCH1 during DNA damage and mitotic progression
title_full PLK1 targets NOTCH1 during DNA damage and mitotic progression
title_fullStr PLK1 targets NOTCH1 during DNA damage and mitotic progression
title_full_unstemmed PLK1 targets NOTCH1 during DNA damage and mitotic progression
title_short PLK1 targets NOTCH1 during DNA damage and mitotic progression
title_sort plk1 targets notch1 during dna damage and mitotic progression
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6879332/
https://www.ncbi.nlm.nih.gov/pubmed/31597699
http://dx.doi.org/10.1074/jbc.RA119.009881
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