SLAYER: a computational framework for identifying synthetic lethal interactions through integrated analysis of cancer

Ziv Cohen1,2, Ekaterina Petrenko2, Alma Sophia Barisaac2

  • 1The Taub Faculty of Computer Science, Technion-Israel Institute of Technology, Haifa 3200003, Israel.

PubMed

Insights

We developed SLAYER, a computational tool to find synthetic lethal interactions for precision oncology. It identified 148 high-confidence candidates, including a promising target for RB1-mutant bladder cancer.

Area of Science:

  • Computational Biology
  • Precision Oncology
  • Cancer Genomics

Background:

  • Synthetic lethality is a key strategy in precision oncology for targeted therapy.
  • Systematic identification of clinically relevant synthetic lethal interactions is challenging.

Purpose of the Study:

  • To present SLAYER, a computational framework for identifying synthetic lethal interactions.
  • To integrate cancer genomic data and CRISPR screens for enhanced target discovery.

Main Methods:

  • SLAYER integrates mutation profiles and genome-wide CRISPR knockout screens across 1080 cancer cell lines.
  • It employs parallel analyses for direct mutation-dependency and pathway-mediated relationships.
  • Candidate interactions were filtered for effect size, druggability, and clinical prevalence.

Main Results:

  • Identified 682 putative synthetic lethal interactions, refined to 148 high-confidence candidates.
  • SLAYER predictions showed a 14-fold enrichment of known associations compared to random gene pairs.
  • Discovered potential synthetic lethality between aryl hydrocarbon receptor (AhR) inhibition and RB1 mutations in bladder cancer.

Conclusions:

  • SLAYER provides a robust computational resource for discovering genetic vulnerabilities in cancer.
  • Experimental validation confirmed selective sensitivity to AhR inhibition in RB1-mutant bladder cancer cells.
  • The findings highlight the utility of integrating diverse datasets for precision therapeutic strategies.

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