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Lighting Up the Pathways to Caspase Activation Using Bimolecular Fluorescence Complementation
Published on: March 5, 2018
Caspase 2 is both required for p53-mediated apoptosis and downregulated by p53 in a p21-dependent manner
Nicole Baptiste-Okoh1, Anthony M Barsotti, Carol Prives
1Department of Biological Sciences, Columbia University, New York, New York, USA.
Abstract:
Upon treatment with some DNA damaging agents, human H1299 tumor-derived cells expressing inducible versions of wild-type or mutant p53 with inactive transactivation domain I (p53(Q22/S23)) undergo apoptosis. In cells expressing either version of p53, caspase 2 activation is required for release of cytochrome c and cell death. Furthermore, silencing of PIDD (a factor previously shown to be required for caspase 2 activation) by siRNA suppresses apoptosis by both wild-type p53 and p53(Q22/S23). Despite the finding that caspase 2 is essential for DNA damage-facilitated, p53-mediated apoptosis, induction of wild-type p53 (with or without DNA damage) resulted in a reduction of caspase 2 mRNA and protein levels. In this study we sought to provide a mechanism for the negative regulation of caspase 2 by p53 as well as provide insight as to why p53 may repress a key mediator of p53-dependent apoptosis. Mechanistically, we show that DNA binding and/or transactivation domains of p53 are crucial for mediating transrepression. Further, expression of p21 (in p53-null cells inducibly expressing p21) is sufficient to mediate repression of caspase 2. Deletion of p21 or E2F-1 not only abrogated repression of caspase 2, but also stimulated the expression of caspase 2 above basal levels, implicating the requirement for an intact p21/Rb/E2F pathway in the downregulation of caspase 2. As this p53/p21-dependent repression of caspase 2 can occur in the absence of DNA damage, caspase 2 repression does not simply seem to be a consequence of the apoptotic process. Downregulation of caspase 2 levels by p53 may help to determine cell fate by preventing cell death when unnecessary.
Insights
p53 protein can repress caspase 2, a key mediator of apoptosis, through the p21 pathway. This p53-mediated repression of caspase 2 may prevent unnecessary cell death.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- DNA damaging agents induce apoptosis in H1299 cells expressing p53.
- Caspase 2 activation is essential for p53-mediated apoptosis.
- PIDD is required for caspase 2 activation and subsequent apoptosis.
Purpose of the Study:
- To elucidate the mechanism by which p53 negatively regulates caspase 2.
- To understand why p53 represses a key mediator of p53-dependent apoptosis.
- To investigate the role of p53 in controlling cell fate through caspase 2 regulation.
Main Methods:
- Utilized inducible wild-type and mutant p53 expression in H1299 cells.
- Employed siRNA to silence PIDD.
- Assessed caspase 2 mRNA and protein levels.
- Investigated the role of p21 and the p21/Rb/E2F pathway in caspase 2 regulation.
Main Results:
- p53, particularly its DNA binding and/or transactivation domains, mediates transrepression of caspase 2.
- Expression of p21 is sufficient to repress caspase 2.
- Deletion of p21 or E2F-1 abrogated repression and increased caspase 2 expression.
- p53/p21-dependent repression of caspase 2 occurs independently of DNA damage.
Conclusions:
- The p53/p21 pathway, involving the p21/Rb/E2F pathway, actively downregulates caspase 2.
- This repression mechanism allows p53 to control cell fate by preventing unnecessary apoptosis.
- Understanding this regulation provides insight into p53's role in tumor suppression and cell survival.
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