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A kinome siRNA screen identifies HGS as a potential target for liver cancers with oncogenic mutations in CTNNB1
Frédéric Canal1,2,3,4,5, Elodie Anthony6, Aurianne Lescure7
1Department Development, Reproduction and Cancer, INSERM U1016, Institut Cochin, 24, rue du Faubourg Saint-Jacques, 75014, Paris, France. frederic.canal94@gmail.com.
Background:
Aberrant activation of the Wnt/β-catenin pathway is a major and frequent event in liver cancer, but inhibition of oncogenic β-catenin signaling has proven challenging. The identification of genes that are synthetically lethal in β-catenin-activated cancer cells would provide new targets for therapeutic drug design.
Methods:
We transfected the parental HuH6 hepatoblastoma cell line with a doxycycline-inducible shRNA against CTNNB1 (gene coding for β-catenin) to obtain an isogenic cell line pair with or without aberrant β-catenin signaling. Using this hepatoblastoma isogenic cell line pair, we performed a human kinome-wide siRNA screen to identify synthetic lethal interactions with oncogenic CTNNB1. The phenotypic readouts of the screen were cell proliferation, cell cycle arrest and apoptosis, which were assessed by image-based analysis. In addition, apoptosis was assessed by flow cytometric experiments and immunoblotting. The potential synthetic lethal relationship between candidates genes identified in the screen and oncogenic CTNNB1 was also investigated in a different cellular context, a colorectal HCT116 isogenic cell line pair.
Results:
We first determined the experimental conditions that led to the efficient expression of shRNA against CTNNB1 and maximal reduction of β-catenin signaling activity in response to doxycycline treatment. Following high throughput screening in which 687 genes coding for kinases and proteins related to kinases (such as pseudokinases and phosphatases) were targeted, we identified 52 genes required for HuH6 survival. The silencing of five of these genes selectively impaired the viability of HuH6 cells with high β-catenin signaling: HGS, STRADA, FES, BRAF and PKMYT1. Among these candidates, HGS depletion had the strongest inhibitory effect on cell growth and led to apoptosis specifically in HuH6 with high β-catenin activity, while HuH6 with low β-catenin activity were spared. In addition, HGS was identified as a potential synthetic lethal partner of oncogenic CTNNB1 in the HCT116 colorectal isogenic cell line pair.
Conclusions:
These results demonstrate the existence of crosstalk between β-catenin signaling and HGS. Importantly, HGS depletion specifically affected cells with uncontrolled β-catenin signaling activity in two different types of cancer (Hepatoblastoma HuH6 and colorectal HCT116), and thus may represent a new potential target for novel therapeutic strategies in liver and colorectal cancer.
Insights
Aberrant Wnt/β-catenin signaling drives liver cancer. Researchers identified HGS as a gene synthetically lethal with oncogenic β-catenin, offering a potential therapeutic target for liver and colorectal cancers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Aberrant Wnt/β-catenin pathway activation is a common driver in liver cancer.
- Targeting oncogenic β-catenin signaling presents therapeutic challenges.
- Identifying synthetic lethal genes offers novel drug targets for β-catenin-activated cancers.
Purpose of the Study:
- To identify genes that are synthetically lethal with oncogenic β-catenin signaling.
- To discover new therapeutic targets for liver and colorectal cancers driven by β-catenin.
Main Methods:
- Generated an isogenic hepatoblastoma cell line pair with or without aberrant β-catenin signaling using shRNA against CTNNB1.
- Conducted a kinome-wide siRNA screen to identify synthetic lethal interactions with oncogenic CTNNB1.
- Assessed phenotypic readouts including cell proliferation, cell cycle arrest, and apoptosis.
Main Results:
- Identified 52 genes essential for HuH6 cell survival from a screen of 687 kinases and related proteins.
- Silencing of HGS, STRADA, FES, BRAF, and PKMYT1 selectively impaired viability in cells with high β-catenin signaling.
- HGS depletion strongly inhibited cell growth and induced apoptosis specifically in cells with high β-catenin activity, confirmed in colorectal cancer cells.
Conclusions:
- Demonstrated crosstalk between β-catenin signaling and HGS.
- HGS depletion selectively targets cancer cells with uncontrolled β-catenin signaling.
- HGS represents a promising therapeutic target for liver and colorectal cancers.
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