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Updated: Aug 1, 2026

Pooled CRISPR-Based Genetic Screens in Mammalian Cells
Published on: September 4, 2019
Double knockout CRISPR screen for cancer resistance to T cell cytotoxicity
Jonathan J Park1,2,3,4,5,6, Adan Codina1,2,3,4,5, Lupeng Ye1,2,3
1Department of Genetics, Yale University School of Medicine, New Haven, CT, USA.
Abstract:
Immunotherapy has transformed cancer treatments; however, a large fraction of patients encounter resistance. Such resistance is mediated by complex factors, often involving interactions between multiple genes. Thus, it is crucially important to identify genetic interactions between genes that are significantly mutated in cancer patients and those involved in immune responses, ideally the ones that currently have chemical compounds for direct targeting. To systematically interrogate such genetic interactions that mediate cancer cells' response to T cell killing, we designed an asymmetric dual perturbation library targeting the matched combinations between significantly mutated tumor suppressors and immune resistance genes. We performed a combinatorial double knockout screen on 1159 gene pairs and identified those where joint loss-of-function renders altered cellular response to T cell cytotoxicity. We also performed comparative transcriptomics-based analyses on tumor and normal samples from TCGA and GTEx cohorts, mutational profiling analyses, and survival analyses to further characterize the significance of identified hits in clinical patients. Interactions between significantly mutated tumor suppressors and potentially druggable immune resistance genes may offer insights on potential new concepts of how to target clinically relevant cancer mutations with currently available agents. This study also provides a technology platform and an asymmetric double knockout library for interrogating genetic interactions between cancer mutations and immune resistance pathways under various settings.
Insights
Identifying gene interactions is key to overcoming cancer treatment resistance. This study reveals how combining tumor suppressor and immune resistance gene knockouts impacts T cell killing, offering new therapeutic targets.
Area of Science:
- Cancer research
- Immunology
- Genetics
Background:
- Cancer immunotherapy has revolutionized treatment but faces significant resistance from patients.
- Genetic interactions between mutated tumor suppressors and immune resistance genes are critical factors mediating this resistance.
- Targeting these interactions is crucial for developing novel therapeutic strategies.
Discussion:
- An asymmetric dual perturbation library was created to systematically study gene interactions affecting T cell killing.
- A combinatorial double knockout screen identified gene pairs where joint loss-of-function alters cellular responses to T cell cytotoxicity.
- Transcriptomic, mutational profiling, and survival analyses were performed on clinical cohorts (TCGA, GTEx) to validate findings.
Key Insights:
- Identified specific genetic interactions between significantly mutated tumor suppressors and druggable immune resistance genes.
- These interactions provide insights into mechanisms of resistance to cancer immunotherapy.
- The study highlights potential new therapeutic concepts for targeting cancer mutations with existing agents.
Outlook:
- The developed technology platform and library enable further interrogation of genetic interactions in cancer and immunity.
- Findings pave the way for precision medicine approaches by combining genetic insights with targeted therapies.
- Future research can explore these interactions in diverse cancer types and treatment settings.
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