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PMID: 27453043 Published · ppublish English

A Network of Conserved Synthetic Lethal Interactions for Exploration of Precision Cancer Therapy.

Molecular cell ·Vol. 63 ·No. 3 ·0000-00-00

Srivas Rohith, Shen John Paul, Yang Chih Cheng, Sun Su Ming, Li Jianfeng, Gross Andrew M, Jensen James, Licon Katherine, Bojorquez-Gomez Ana, Klepper Kristin, Huang Justin, Pekin Daniel, Xu Jia L, Yeerna Huwate, Sivaganesh Vignesh, Kollenstart Leonie, van Attikum Haico, Aza-Blanc Pedro, Sobol Robert W, Ideker Trey

Abstract

An emerging therapeutic strategy for cancer is to induce selective lethality in a tumor by exploiting interactions between its driving mutations and specific drug targets. Here we use a multi-species approach to develop a resource of synthetic lethal interactions relevant to cancer therapy. First, we screen in yeast ∼169,000 potential interactions among orthologs of human tumor suppressor genes (TSG) and genes encoding drug targets across multiple genotoxic environments. Guided by the strongest signal, we evaluate thousands of TSG-drug combinations in HeLa cells, resulting in networks of conserved synthetic lethal interactions. Analysis of these networks reveals that interaction stability across environments and shared gene function increase the likelihood of observing an interaction in human cancer cells. Using these rules, we prioritize ∼10(5) human TSG-drug combinations for future follow-up. We validate interactions based on cell and/or patient survival, including topoisomerases with RAD17 and checkpoint kinases with BLM.

Article Info
Journal
Molecular cell
Abbr.
Mol Cell
Published
0000-00-00
Indexed
2016-08-06
Updated
2016-12-08
Language
English
Country/Region
United States
NLM ID
9802571
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