p62-mediated Selective autophagy endows virus-transformed cells with insusceptibility to DNA damage under oxidative

Ling Wang1,2, Mary E A Howell1, Ayrianna Sparks-Wallace1

  • 1Department of Internal Medicine, Quillen College of Medicine, East Tennessee State University, Johnson City, TN, United States of America.

Plos Pathogens
|April 25, 2019
PubMed

Insights

Selective autophagy receptor p62 plays a key role in crosstalk between DNA damage response and oncogenic virus infection. Autophagy inhibition causes p62 nuclear accumulation, promoting DNA damage and instability of repair proteins CHK1 and RAD51.

Area of Science:

  • Cellular Biology
  • Oncology
  • Virology

Background:

  • DNA damage response (DDR) and selective autophagy are crucial in cancer development and activated by reactive oxygen/nitrogen species (ROS/RNS).
  • The selective autophagy receptor p62 links ROS/RNS-induced pathways, including those in latent oncogenic virus infections like Epstein-Barr Virus (EBV).
  • The interplay between p62-mediated selective autophagy and DDR in virus-transformed cells remains largely unexplored.

Purpose of the Study:

  • To investigate the role of p62-mediated selective autophagy in virus-transformed cells.
  • To explore the crosstalk between p62, selective autophagy, and DNA damage response (DDR) in the context of latent EBV infection.
  • To elucidate the mechanisms by which p62 influences DNA repair proteins CHK1 and RAD51 stability.

Main Methods:

  • Analysis of p62-mediated selective autophagy and ROS-Keap1-NRF2 pathway activity in virus-transformed cells.
  • Inhibition of autophagy and proteasome activity (using MG132) to assess effects on p62, CHK1, and RAD51.
  • Expression of a nuclear-localized p62 mutant in B cell lines.
  • Small hairpin RNA (shRNA)-mediated p62 depletion in EBV-transformed lymphoblastic cell lines (LCLs).
  • Assessment of DNA damage foci (γH2AX) and chromatin ubiquitination.

Main Results:

  • Spontaneous p62-mediated selective autophagy and ROS-Keap1-NRF2 pathway activity were observed in virus-transformed cells.
  • Autophagy inhibition led to nuclear p62 accumulation, increased ROS-induced DNA damage, cell death, and decreased CHK1/RAD51 levels.
  • Proteasome inhibition (MG132) increased CHK1/RAD51 but this effect was abolished by autophagy inhibition, suggesting p62 nuclear accumulation promotes proteasomal degradation of CHK1/RAD51.
  • Nuclear-localized p62 mutant mimicked autophagy inhibition effects on CHK1/RAD51 stability.
  • p62 depletion in EBV-LCLs increased DNA damage foci and chromatin ubiquitination, indicating activation of RNF168-mediated repair.

Conclusions:

  • p62-mediated selective autophagy governs DDR during latent oncogenic virus infection.
  • Nuclear accumulation of p62, induced by autophagy inhibition, promotes proteasomal degradation of DNA repair proteins CHK1 and RAD51.
  • p62 depletion activates alternative DNA repair pathways, highlighting its complex role in maintaining genomic stability in virus-infected cells.
  • These findings offer novel insights into virus-mediated oncogenesis and potential therapeutic targets.

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