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.

AIDS (London, England)
|January 13, 2017
PubMed
Abstract

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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