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A single mutant, A276S of p53, turns the switch to apoptosis
Shams Reaz1, Mohanad Mossalam, Abood Okal
1Department of Pharmaceutics and Pharmaceutical Chemistry, University of Utah, Salt Lake City, Utah 84112, USA.
Abstract:
The tumor suppressor protein p53 induces apoptosis, cell cycle arrest, and DNA repair along with other functions in a transcription-dependent manner [Vousden, K. H. Cell 2000, 103(5), 691-694]. The selection of these functions depends on sequence-specific recognition of p53 to a target decameric sequence of gene promoters [Kitayner, M.; et al. Mol. Cell 2006, 22(6), 741-753]. Amino acid residues in p53 that directly bind to DNA were analyzed, and the replacement of A276 in p53 with selected amino acids elucidated its importance in promoter transcription. For most apoptotic and cell cycle gene promoters, position 9 of the target decameric sequence is a cytosine, while for DNA repair gene promoters, thymine is found instead. Therefore, selective binding to the cytosine at the ninth position may transcribe apoptotic gene promoters and thus can induce apoptosis and cell cycle arrest. Molecular modeling with PyMOL indicated that substitution of a hydrophilic residue, A276S, would prefer binding to cytosine at the ninth position of the target decameric sequence, whereas substitution of a hydrophobic residue (A276F) would fail to do so. Correspondingly, A276S demonstrated higher transcription of PUMA, PERP, and p21(WAF1/CIP1)gene promoters containing a cytosine at the ninth position and lower transcription of GADD45 gene promoter containing a thymine at the ninth position compared to wild-type p53. Cell cycle analysis showed that A276S maintained similar G1/G0 phase arrest as wild-type p53. Additionally, A276S induced higher apoptosis than wild-type p53 as measured by DNA segmentation and 7-AAD assay. Since the status of endogenous p53 can influence the activity of the exogenous p53, we examined the activity of A276S in HeLa cells (wild-type endogenous p53) in addition to T47D cells (mutated and mislocalized endogenous p53). The same apoptotic trend in both cell lines suggested A276S can induce cell death regardless of endogenous p53 status. Cell proliferation assay depicted that A276S efficiently reduced the viability of T47D cells more than wild-type p53 over time. We conclude that the predicted preferred binding of A276S to cytosine at the ninth position better transactivates a number of apoptotic gene promoters. Higher induction apoptosis than wild-type p53 makes A276S an attractive candidate for therapy to eradicate cancer.
Insights
The tumor suppressor protein p53
Area of Science:
- Molecular Biology
- Cancer Research
- Protein Biochemistry
Background:
- The tumor suppressor protein p53 regulates critical cellular processes including apoptosis, cell cycle arrest, and DNA repair.
- p53's function is transcription-dependent, relying on sequence-specific binding to gene promoters.
- The amino acid at position 276 (A276) in p53 is crucial for DNA binding and promoter transcription.
Purpose of the Study:
- To investigate the role of the A276 residue in p53's DNA binding specificity and transcriptional activity.
- To determine if modifying A276 can enhance p53's ability to induce apoptosis for cancer therapy.
Main Methods:
- Molecular modeling using PyMOL to predict binding preferences of p53 mutants.
- Site-directed mutagenesis to create A276S and A276F p53 variants.
- Reporter gene assays to measure the transcription of apoptotic, cell cycle, and DNA repair gene promoters.
- Cell cycle analysis and apoptosis assays (DNA segmentation, 7-AAD) to assess p53 function.
- Cell proliferation assays to evaluate the impact of p53 variants on cancer cell viability.
Main Results:
- The A276S substitution, a hydrophilic residue, was predicted to favor binding to cytosine at the ninth position of target promoters.
- A276S demonstrated enhanced transcription of apoptotic gene promoters (PUMA, PERP, p21) with cytosine at position 9.
- A276S showed reduced transcription of the DNA repair gene promoter (GADD45) with thymine at position 9.
- A276S induced apoptosis and G1/G0 cell cycle arrest similarly to wild-type p53, but with higher apoptotic induction.
- A276S effectively reduced cancer cell viability, irrespective of endogenous p53 status.
Conclusions:
- The A276S mutation enhances p53's transactivation of apoptotic gene promoters by favoring cytosine binding at the ninth position.
- A276S exhibits superior apoptosis-inducing capabilities compared to wild-type p53.
- A276S represents a promising therapeutic candidate for cancer treatment due to its potent cancer-eradicating potential.
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