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Role of p53 in cellular response to anticancer nucleoside analog-induced DNA damage
L Feng1, G Achanta, H Pelicano
1Department of Experimental Therapeutics, The University of Texas M.D. Anderson Cancer Center, Houston, TX 77030, USA.
Abstract:
Anticancer nucleoside analogs (e.g., ara-C, gemcitabine, fludarabine) induce apoptosis by incorporation into DNA. Removal of incorporated analogs from DNA by 3'-5' exonucleases is presumably a mechanism of drug resistance. Based on our previous observation that the 3'-5' exonuclease activity of wild-type (wt) p53 protein is able to preferentially remove mismatched nucleotides from DNA, in the present study we further investigated the ability of p53 to recognize and remove incorporated therapeutic analogs from DNA and its role in analog-induced apoptosis. We demonstrated that although the 3'-5' exonuclease of wt p53 protein was able to bind and excise the nucleoside analog residues from DNA in vitro, removal of the drug molecules from cellular DNA was slow in whole cells with wt p53 cells, and not detectable in mutant p53 cells. Furthermore, the wt p53 were more sensitive to the cytotoxic effect of the drugs compared to the p53-null or mutant cells. Incubation of ML-1 cells (wt p53) with gemcitabine caused an accumulation of p53 protein in their nuclei and preferentially induced apoptosis in the p53-positive cells, whereas the p53-negative cells remained intact. Transfection of p53-null cells with wt p53 expression vector enhanced the sensitivity of the cells to gemcitabine. Gel mobility shift assay using synthetic DNA containing gemcitabine as the probe suggests that p53 protein is likely to participate in the binding of the analog-containing DNA. Our study suggests that recognition of the incorporated nucleoside analogs in DNA by wt p53 did not confer resistance to the drugs, but it facilitated the apoptotic cell death process.
Insights
Wild-type p53 protein excises anticancer nucleoside analogs from DNA, enhancing apoptosis. This suggests p53 facilitates drug-induced cell death rather than conferring resistance, impacting cancer therapy strategies.
Area of Science:
- Molecular Biology
- Cancer Research
- Biochemistry
Background:
- Anticancer nucleoside analogs induce apoptosis via DNA incorporation.
- 3'-5' exonucleases are implicated in drug resistance by removing incorporated analogs.
- Wild-type p53 protein possesses 3'-5' exonuclease activity, preferentially removing mismatched nucleotides.
Purpose of the Study:
- To investigate p53's ability to recognize and remove incorporated therapeutic nucleoside analogs from DNA.
- To determine the role of p53 in nucleoside analog-induced apoptosis.
Main Methods:
- In vitro DNA binding and excision assays using p53 protein.
- Cellular studies with wild-type, mutant, and p53-null cells treated with gemcitabine.
- Apoptosis assays and Western blotting for p53 accumulation.
- Gel mobility shift assays to assess p53-DNA binding.
Main Results:
- Wild-type p53 exonuclease activity excised nucleoside analogs from DNA in vitro.
- Drug removal from cellular DNA was slow in wild-type p53 cells and undetectable in mutant p53 cells.
- Wild-type p53 cells showed increased sensitivity to nucleoside analogs compared to p53-null or mutant cells.
- p53 accumulation and enhanced apoptosis were observed in wild-type p53 cells treated with gemcitabine.
Conclusions:
- Wild-type p53 recognizes and binds to DNA containing incorporated nucleoside analogs.
- p53 facilitates, rather than confers resistance to, nucleoside analog-induced apoptosis.
- p53's role in DNA repair and apoptosis modulation is crucial for anticancer drug efficacy.