Multi-omic measurement of mutually exclusive loss-of-function enriches for candidate synthetic lethal gene pairs

Mark Wappett1, Austin Dulak2, Zheng Rong Yang3

  • 1Oncology Innovative Medicines, AstraZeneca, Macclesfield, UK. mark.wappett@almacgroup.com.

BMC Genomics
|January 20, 2016
PubMed
Abstract

Insights

This study introduces a computational method to identify gene pairs with mutually exclusive loss-of-function, aiding in the discovery of novel synthetic lethal interactions for cancer therapeutics. The approach improves predictions by considering non-genetic loss-of-function, offering new drug target hypotheses.

Area of Science:

  • Genomics
  • Computational Biology
  • Cancer Research

Background:

  • Synthetic lethal interactions in cancer offer therapeutic targets.
  • Large-scale functional genomic screens can test these hypotheses.
  • Identifying candidate targets requires methods that enrich for specific gene pairs.

Purpose of the Study:

  • To develop a computational approach for identifying gene pairs with mutually exclusive loss-of-function across multi-omic cancer data.
  • To improve the prediction of synthetic lethal interactions by including non-genetic loss-of-function.
  • To generate novel hypotheses for cancer drug targets and combinations.

Main Methods:

  • Developed a computational toolkit to mine large multi-omic cancer datasets.
  • Identified gene pairs exhibiting mutually exclusive loss-of-function, including deleterious mutations, gene deletion, and loss of mRNA expression.
  • Utilized a novel algorithm, BiSEp, to define gene loss-of-function through bimodality analysis.

Main Results:

  • Achieved statistically significant enrichment for validated tumor suppressor genes and synthetic lethal gene pairings using both cell line and patient data.
  • Demonstrated that incorporating non-genetic loss-of-function significantly improves predictions compared to genetic-only approaches.
  • Established biological rationale for novel candidate synthetic lethal gene pairs with demonstrated dependencies in cancer cell line screens.

Conclusions:

  • Introduced a multi-omic approach to define gene loss-of-function and enrich for candidate synthetic lethal gene pairs.
  • Provided a resource for generating new cancer drug target and combination hypotheses.
  • Made the BiSEp algorithms freely available via a CRAN package.

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