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E2F and p53 Induce Apoptosis Independently during Drosophila Development but Intersect in the Context of DNA Damage

In mammalian cells, RB/E2F and p53 are intimately connected, and crosstalk between these pathways is critical for the induction of cell cycle arrest or cell death in response to cellular stresses. Here we have investigated the genetic interactions between RBF/E2F and p53 pathways during Drosophila d...

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Autores principales: Moon, Nam-Sung, Di Stefano, Luisa, Morris, Erick J., Patel, Reena, White, Kristin, Dyson, Nicholas J.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2491587/
https://www.ncbi.nlm.nih.gov/pubmed/18688282
http://dx.doi.org/10.1371/journal.pgen.1000153
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author Moon, Nam-Sung
Di Stefano, Luisa
Morris, Erick J.
Patel, Reena
White, Kristin
Dyson, Nicholas J.
author_facet Moon, Nam-Sung
Di Stefano, Luisa
Morris, Erick J.
Patel, Reena
White, Kristin
Dyson, Nicholas J.
author_sort Moon, Nam-Sung
collection PubMed
description In mammalian cells, RB/E2F and p53 are intimately connected, and crosstalk between these pathways is critical for the induction of cell cycle arrest or cell death in response to cellular stresses. Here we have investigated the genetic interactions between RBF/E2F and p53 pathways during Drosophila development. Unexpectedly, we find that the pro-apoptotic activities of E2F and p53 are independent of one another when examined in the context of Drosophila development: apoptosis induced by the deregulation of dE2F1, or by the overexpression of dE2F1, is unaffected by the elimination of dp53; conversely, dp53-induced phenotypes are unaffected by the elimination of dE2F activity. However, dE2F and dp53 converge in the context of a DNA damage response. Both dE2F1/dDP and dp53 are required for DNA damage-induced cell death, and the analysis of rbf1 mutant eye discs indicates that dE2F1/dDP and dp53 cooperatively promote cell death in irradiated discs. In this context, the further deregulation in the expression of pro-apoptotic genes generates an additional sensitivity to apoptosis that requires both dE2F/dDP and dp53 activity. This sensitivity differs from DNA damage-induced apoptosis in wild-type discs (and from dE2F/dDP-induced apoptosis in un-irradiated rbf1 mutant eye discs) by being dependent on both hid and reaper. These results show that pro-apoptotic activities of dE2F1 and dp53 are surprisingly separable: dp53 is required for dE2F-dependent apoptosis in the response to DNA damage, but it is not required for dE2F-dependent apoptosis caused simply by the inactivation of rbf1.
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spelling pubmed-24915872008-08-08 E2F and p53 Induce Apoptosis Independently during Drosophila Development but Intersect in the Context of DNA Damage Moon, Nam-Sung Di Stefano, Luisa Morris, Erick J. Patel, Reena White, Kristin Dyson, Nicholas J. PLoS Genet Research Article In mammalian cells, RB/E2F and p53 are intimately connected, and crosstalk between these pathways is critical for the induction of cell cycle arrest or cell death in response to cellular stresses. Here we have investigated the genetic interactions between RBF/E2F and p53 pathways during Drosophila development. Unexpectedly, we find that the pro-apoptotic activities of E2F and p53 are independent of one another when examined in the context of Drosophila development: apoptosis induced by the deregulation of dE2F1, or by the overexpression of dE2F1, is unaffected by the elimination of dp53; conversely, dp53-induced phenotypes are unaffected by the elimination of dE2F activity. However, dE2F and dp53 converge in the context of a DNA damage response. Both dE2F1/dDP and dp53 are required for DNA damage-induced cell death, and the analysis of rbf1 mutant eye discs indicates that dE2F1/dDP and dp53 cooperatively promote cell death in irradiated discs. In this context, the further deregulation in the expression of pro-apoptotic genes generates an additional sensitivity to apoptosis that requires both dE2F/dDP and dp53 activity. This sensitivity differs from DNA damage-induced apoptosis in wild-type discs (and from dE2F/dDP-induced apoptosis in un-irradiated rbf1 mutant eye discs) by being dependent on both hid and reaper. These results show that pro-apoptotic activities of dE2F1 and dp53 are surprisingly separable: dp53 is required for dE2F-dependent apoptosis in the response to DNA damage, but it is not required for dE2F-dependent apoptosis caused simply by the inactivation of rbf1. Public Library of Science 2008-08-08 /pmc/articles/PMC2491587/ /pubmed/18688282 http://dx.doi.org/10.1371/journal.pgen.1000153 Text en Moon et al. http://creativecommons.org/licenses/by/4.0/ 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 properly credited.
spellingShingle Research Article
Moon, Nam-Sung
Di Stefano, Luisa
Morris, Erick J.
Patel, Reena
White, Kristin
Dyson, Nicholas J.
E2F and p53 Induce Apoptosis Independently during Drosophila Development but Intersect in the Context of DNA Damage
title E2F and p53 Induce Apoptosis Independently during Drosophila Development but Intersect in the Context of DNA Damage
title_full E2F and p53 Induce Apoptosis Independently during Drosophila Development but Intersect in the Context of DNA Damage
title_fullStr E2F and p53 Induce Apoptosis Independently during Drosophila Development but Intersect in the Context of DNA Damage
title_full_unstemmed E2F and p53 Induce Apoptosis Independently during Drosophila Development but Intersect in the Context of DNA Damage
title_short E2F and p53 Induce Apoptosis Independently during Drosophila Development but Intersect in the Context of DNA Damage
title_sort e2f and p53 induce apoptosis independently during drosophila development but intersect in the context of dna damage
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2491587/
https://www.ncbi.nlm.nih.gov/pubmed/18688282
http://dx.doi.org/10.1371/journal.pgen.1000153
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