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The apoptotic and transcriptional transactivation activities of p53 can be dissociated
N Bissonnette1, B Wasylyk, D J Hunting
1MRC Group in the Radiation Sciences, Faculté de médecine, Université de Sherbrooke, QC, Canada.
Abstract:
Previous studies have shown that the apoptotic response of cells following DNA damage requires p53 expression. Wild-type p53 protein levels increase in response to DNA damage and its growth-suppressive action is thought to be mediated by transcriptional activation of the p21/WAF1/CIP1 gene, the product of which is a potent inhibitor of cyclin-dependent kinases. The mechanism by which elevated p53 levels lead to apoptosis is not known, but is believed to involve transcriptional activation of apoptotic genes, such as BAX. We have studied transformed human cells that constitutively express high levels of the R273H mutant p53, which has been reported to lack transcriptional activation activity. We used the inability to induce the p21/Waf1/Cip1 protein as a marker to verify the lack of transcriptional activation activity. Cells expressing the R273H mutant of p53 do not show an increase in p21/Waf1/Cip1 following irradiation with ionizing or UVB radiation. Surprisingly, these cells are very susceptible to induction of apoptosis by UVB radiation, as seen by the formation of a nucleosomal ladder and the proteolytic cleavage of poly(ADP-ribose) polymerase. This suggests that the R273 mutant p53 can function normally in apoptosis but not in transcriptional activation following DNA damage. Furthermore, an inhibitor of RNA polymerase II is a potent inducer of apoptosis in these cells, demonstrating that transcription is not required for apoptosis and suggesting that stalled RNA polymerase II complexes can initiate apoptosis. Interestingly, proteolytic cleavage of p53 occurs during apoptosis in these cells, generating a 45-kDa fragment and liberating the DNA repair helicase binding domain of p53. We propose that the peptide liberated from the carboxy terminus of p53 may contribute to its apoptotic activity, possibly through interaction with the XPB and XPD DNA helicases.
Insights
This study reveals that a mutant p53 protein, despite lacking transcriptional activity, can still trigger apoptosis following DNA damage. This suggests apoptosis can occur independently of p53-mediated gene transcription.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- The tumor suppressor protein p53 is crucial for cellular responses to DNA damage, typically mediating growth suppression and apoptosis.
- Wild-type p53's growth suppression is linked to transcriptional activation of genes like p21/WAF1/CIP1, inhibiting cyclin-dependent kinases.
- Apoptosis induction by p53 is thought to involve transcriptional activation of pro-apoptotic genes, though the exact mechanism remains unclear.
Purpose of the Study:
- To investigate the role of a transcriptionally inactive mutant p53 (R273H) in DNA damage-induced apoptosis.
- To determine if apoptosis can occur independently of p53's transcriptional activation function.
- To explore potential alternative mechanisms of p53-mediated apoptosis.
Main Methods:
- Utilized transformed human cells expressing high levels of R273H mutant p53.
- Verified lack of transcriptional activity by assessing p21/Waf1/Cip1 induction after UVB or ionizing radiation.
- Induction of apoptosis was assessed via nucleosomal ladder formation and poly(ADP-ribose) polymerase cleavage.
- Investigated apoptosis induction using an RNA polymerase II inhibitor.
Main Results:
- Cells expressing R273H mutant p53 showed no increase in p21/Waf1/Cip1 after DNA damage, confirming lack of transcriptional activity.
- These cells exhibited high susceptibility to UVB-induced apoptosis.
- Apoptosis was induced by an RNA polymerase II inhibitor, indicating transcription is not required.
- Proteolytic cleavage of p53 during apoptosis generated a 45-kDa fragment.
Conclusions:
- The R273H mutant p53 can mediate apoptosis independently of its transcriptional activation function.
- Transcription is not a prerequisite for DNA damage-induced apoptosis in these cells.
- A C-terminal peptide fragment of p53 released during cleavage may contribute to apoptosis, potentially via DNA helicase interactions.