Adenovirus 12 E4orf6 inhibits ATR activation by promoting TOPBP1 degradation

Andrew N Blackford1, Rakesh N Patel, Natalie A Forrester

  • 1School of Cancer Sciences, College of Medical and Dental Sciences, University of Birmingham, Birmingham B15 2TT, United Kingdom. andrew.blackford@imm.ox.ac.uk

Insights

Adenovirus (Ad) inhibits the DNA damage response. Unlike Ad5, Ad12 uses a specific ubiquitin ligase to degrade the ATR activator TOPBP1, preventing ATR signaling during infection.

Area of Science:

  • Virology
  • Molecular Biology
  • Cellular Biology

Background:

  • Adenovirus (Ad) infection is hindered by the host's DNA damage response.
  • Ad has developed mechanisms to suppress ATM and ATR signaling pathways.
  • Ad5 inhibits ATR by mislocalizing the MRN complex via E4orf3.

Purpose of the Study:

  • To investigate the distinct strategy employed by Ad12 to inhibit ATR signaling.
  • To elucidate the role of Ad12 proteins in degrading key components of the ATR pathway.

Main Methods:

  • Investigated Ad12's mechanism for inhibiting ATR activation.
  • Utilized ubiquitin ligase assays and proteasomal degradation studies.
  • Analyzed the degradation of TOPBP1 and p53 by Ad12 proteins.
  • Assessed the impact of Ad12 E4orf6 on ATR-dependent CHK1 phosphorylation.

Main Results:

  • Ad12 employs a CUL2/RBX1/elongin C ubiquitin ligase to degrade TOPBP1, an ATR activator.
  • Ad12 also degrades p53 using this complex, differing from Ad5's mechanism.
  • Ad12 E4orf6 is crucial for TOPBP1 degradation and acts as a substrate receptor.
  • Ad12 E4orf6 inhibits ATR-dependent CHK1 phosphorylation, confirming ATR pathway suppression.

Conclusions:

  • Ad12 utilizes a distinct ubiquitin ligase strategy to degrade TOPBP1 and inhibit ATR signaling.
  • Ad12 E4orf6 plays a dual role in recruiting the ligase and targeting TOPBP1.
  • These findings reveal novel mechanisms by which Ad manipulates host ATR signaling during infection.

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