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Updated: May 1, 2026

In Vivo Biosensor Tracks Non-apoptotic Caspase Activity in Drosophila
Published on: November 27, 2016
E2F and p53 induce apoptosis independently during Drosophila development but intersect in the context of DNA damage
Nam-Sung Moon1, Luisa Di Stefano, Erick J Morris
1Massachusetts General Hospital Cancer Research Center, Charlestown, Massachusetts, United States of America.
Abstract:
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.
Insights
The pro-apoptotic roles of E2F and p53 in Drosophila development are largely independent, except during DNA damage response where they cooperate. This reveals separable apoptotic functions for E2F and p53 pathways.
Area of Science:
- Cell Biology
- Developmental Biology
- Genetics
Background:
- The RB/E2F and p53 pathways are crucial for cell cycle control and stress responses in mammals.
- Crosstalk between these pathways regulates cell cycle arrest and apoptosis.
- Their specific interactions during development are less understood.
Purpose of the Study:
- To investigate the genetic interactions between RBF/E2F and p53 pathways in Drosophila development.
- To determine if E2F and p53 cooperate in inducing apoptosis during development.
- To elucidate the roles of dE2F1 and dp53 in response to cellular stress.
Main Methods:
- Genetic interaction studies in Drosophila melanogaster.
- Analysis of phenotypes in rbf1 mutant eye discs.
- Investigation of apoptosis induction via deregulation or overexpression of dE2F1.
- Assessment of dp53-induced phenotypes upon dE2F activity elimination.
- Examination of DNA damage-induced cell death.
Main Results:
- Pro-apoptotic activities of dE2F1 and dp53 are independent in normal Drosophila development.
- Apoptosis induced by dE2F1 deregulation or overexpression is unaffected by dp53 elimination.
- dp53-induced phenotypes are unaffected by dE2F activity elimination.
- dE2F1 and dp53 cooperate to promote cell death in response to DNA damage.
- Both dE2F1/dDP and dp53 are required for DNA damage-induced apoptosis.
Conclusions:
- The pro-apoptotic functions of dE2F1 and dp53 are separable in Drosophila development.
- dp53 is essential for dE2F-dependent apoptosis specifically during DNA damage response.
- dp53 is not required for dE2F-dependent apoptosis resulting from RBF1 inactivation alone.
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