Pan-cancer analysis of non-oncogene addiction to DNA repair

Luis Bermúdez-Guzmán1,2

  • 1Robotic Radiosurgery Center, International Cancer Center, San José, Costa Rica. luis.bermudezguzman@ucr.ac.cr.

Scientific Reports
|December 2, 2021
PubMed

Insights

Cancer cells can become addicted to DNA repair genes, not just oncogenes, for survival. This study identifies key DNA repair genes linked to patient outcomes, offering new therapeutic targets.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Cancer cells often rely on specific genes for survival, a concept known as oncogene addiction.
  • Non-oncogene addiction, where cancer cells depend on normal gene functions for survival, is an emerging area.
  • DNA repair genes are crucial for maintaining genomic stability, and their dysregulation can promote cancer.

Purpose of the Study:

  • To systematically evaluate DNA repair addiction across various cancer types.
  • To identify specific DNA repair genes essential for tumor cell survival.
  • To investigate the association between DNA repair gene alterations and patient survival outcomes.

Main Methods:

  • Utilized data from The Cancer Dependency Map and The Cancer Genome Atlas (TCGA).
  • Analyzed 241 DNA damage response (DDR) genes for essentiality in cancer cell lines.
  • Correlated gene expression and dependency scores with patient survival data across 18 cancer types.

Main Results:

  • Identified 59 commonly essential DDR genes across cancer cell lines.
  • Observed significant variations in dependency scores and transcriptomic alterations among cancer types.
  • Found 14 DDR genes associated with better survival and 19 with worse survival.
  • A signature of upregulated DDR genes (e.g., UBE2T, RFC4, POLQ, BRIP1, H2AFX) with low dependency correlated strongly with worse patient survival.

Conclusions:

  • Supports the existence and significance of non-oncogene addiction to DNA repair in cancer.
  • Highlights the potential of DNA repair genes as prognostic biomarkers.
  • Suggests that targeting DNA repair pathways could offer novel therapeutic strategies for cancer treatment.

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