Removal of ribonucleotides by p53 protein incorporated during DNA synthesis by HIV-1 reverse transcriptase
Tzofit Akua1, Galia Rahav, Yossi Saragani
1aInfectious Diseases Unit, Sheba Medical Center, Tel HashomerbDepartment of Cell and Developmental Biology, Sackler School of Medicine, Tel Aviv University, Tel AvivcMina and Everard Goodman Faculty of Life Sciences, Bar-Ilan University, Ramat-Gan, Israel.
Objective(S):
HIV-1 reverse transcriptase frequently incorporates ribonucleotides into the proviral DNA in macrophages, but not in lymphocytes. The enzyme exerts an efficient ribonucleotide-terminated primer extension capacity. Furthermore, ribonucleotide-editing repair is attenuated in macrophages. Tumor suppressor p53 protein, displaying an intrinsic 3'→5' exonuclease activity, was found to be involved in efficient proofreading of base-base mismatches produced during DNA synthesis. As the presence of proofreading activity is cardinal for the DNA synthesis accuracy, it was of interest to assess whether p53 can serve as a trans-acting proofreader for HIV-1 reverse transcriptase during ribonucleotide incorporation.
Design:
We investigated the potential involvement of cytoplasmic p53 in error correction during insertion of ribonucleotides into DNA by recombinant HIV-1 reverse transcriptase in a p53-proficient and deficient background.
Methods:
Primer extension reactions were carried out to elucidate the incorporation and removal of ribonucleotides.
Results:
The biochemical studies suggest that p53 is involved in a ribonucleotide damage-associated repair mechanism through its capacity to remove preformed 3'-terminal ribonucleotides, to decrease ribonucleotide incorporation and to prevent the 3'-ribo-terminated primer extension during ongoing DNA synthesis by HIV-1 reverse transcriptase. A positive correlation exists between the presence of endogenous p53 and decrease in stable incorporation of ribonucleotides into DNA with p53-harboring lysates of HCT116 cells. p53, by preferential removal of purine over pyrimidine ribonucleotides, may affect the ribonucleotide mutation spectra produced by HIV-1 reverse transcriptase.
Conclusion:
The data implies that p53 can excise incorrect sugar in addition to base mispairs, thereby expanding the role of p53 in the repair of nucleic acids replication errors.
Insights
Tumor suppressor p53 protein corrects errors during HIV-1 reverse transcriptase DNA synthesis by removing incorporated ribonucleotides. This repair mechanism reduces mutations and enhances DNA accuracy in macrophages.
Area of Science:
- Molecular Biology
- Virology
- Genetics
Background:
- Human immunodeficiency virus type 1 (HIV-1) reverse transcriptase (RT) often incorporates ribonucleotides into proviral DNA, particularly in macrophages.
- This incorporation leads to DNA synthesis errors and is linked to attenuated ribonucleotide-editing repair in macrophages.
- Tumor suppressor p53 possesses 3'→5' exonuclease activity, crucial for correcting DNA synthesis errors like base-base mismatches.
Purpose of the Study:
- To investigate the role of cytoplasmic p53 in correcting errors caused by HIV-1 RT during ribonucleotide incorporation into DNA.
- To determine if p53 acts as a trans-acting proofreader for HIV-1 RT, specifically addressing ribonucleotide incorporation errors.
Main Methods:
- Recombinant HIV-1 reverse transcriptase was used in primer extension reactions.
- Biochemical assays were performed to analyze ribonucleotide incorporation and removal.
- Studies utilized p53-proficient and p53-deficient cellular backgrounds (HCT116 cells).
Main Results:
- p53 demonstrated involvement in a ribonucleotide damage-associated repair mechanism.
- p53 actively removes 3'-terminal ribonucleotides, reducing their stable incorporation into DNA.
- The presence of p53 correlated with decreased ribonucleotide incorporation and prevented 3'-ribo-terminated primer extension by HIV-1 RT.
- p53 preferentially removed purine over pyrimidine ribonucleotides, potentially influencing mutation spectra.
Conclusions:
- p53 functions as a proofreader for HIV-1 RT, excising incorrect ribonucleotides (sugars) during DNA synthesis.
- This expands the known role of p53 in nucleic acid replication error repair beyond base mispairs.
- p53 enhances the fidelity of DNA synthesis by HIV-1 RT, particularly in error-prone environments like macrophages.
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