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Updated: Sep 28, 2025

Genome-Wide CRISPR Screen for Unveiling Radiosensitive and Radioresistant Genes
Published on: May 23, 2025
CRISPR Screen to Identify Factors that Render Tumor Cells Sensitive or Resistant to Killing by NK Cells
Xiaoxuan Zhuang1, Eric O Long2
1Laboratory of Immunogenetics, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Rockville, MD, USA.
Abstract:
Natural killer (NK) cells are an important component of the cancer immune surveillance system. They are regulated by germline-encoded receptors that activate and inhibit their effector function, such as secretion of cytokines and direct lysis of tumor cells and virus-infected cells. Without the need to be primed by prior exposure to tumor antigen, NK cells can detect ligands expressed on tumor cells and selectively kill these cells. NK cells are under strict control by inhibitory receptors that bind to HLA class I on target cells and block early activation signals, thus preventing lysis of target cells. The sensitivity to lysis by NK cells is therefore determined to a large extent by the expression of HLA class I molecules on tumor cells. In addition to receptor-ligand interactions that occur at NK-target cell synapses, many other factors determine the sensitivity of tumor cells to lysis by NK. Intrinsic properties of tumor cells, such as their metabolism and signaling networks establish a threshold above which they will succumb to the death pathways triggered by NK cell attack. Here we provide a protocol for a genome-wide CRISPR screen in tumor cells to identify factors that regulate their sensitivity to primary human NK cells. Tumor cells first transduced for expression of Cas9 are then transduced with a guide RNA (gRNA) library and co-cultured with NK cells. Deep sequencing of the library generated from the genome of tumor cells that survived the selection by NK cells and analysis of the distribution of guide RNAs is performed to identify genes that promote either sensitivity or resistance to NK-mediated killing. The contribution of individual genes to tumor sensitivity can be validated by knockouts using individual gRNAs. The techniques and workflow described here could be applied to primary tumors from cancer patients and reveal tumor-specific points of vulnerability that could be exploited for cancer immunotherapy, such as checkpoint blockade or expression of chimeric antigen receptors specifically designed to activate NK cell cytotoxicity.
Insights
This study introduces a genome-wide CRISPR screen to identify genes that control tumor cell sensitivity to natural killer (NK) cells. This method reveals potential vulnerabilities for enhancing cancer immunotherapy.
Area of Science:
- Immunology
- Cancer Biology
- Genetics
Background:
- Natural killer (NK) cells are crucial for cancer immune surveillance, eliminating tumor cells via receptor-mediated cytotoxicity.
- NK cell activity is regulated by inhibitory receptors binding to HLA class I on target cells, influencing tumor cell lysis sensitivity.
- Tumor cell intrinsic properties, including metabolism and signaling, also dictate susceptibility to NK cell-mediated death.
Purpose of the Study:
- To develop and present a protocol for a genome-wide CRISPR screen to identify genes regulating tumor cell sensitivity to primary human NK cells.
- To uncover novel factors that modulate tumor cell resistance or susceptibility to NK cell-mediated killing.
- To establish a method applicable to patient-derived tumors for identifying immunotherapy targets.
Main Methods:
- Genome-wide CRISPR screen in Cas9-expressing tumor cells using a guide RNA (gRNA) library.
- Co-culture of transduced tumor cells with primary human NK cells to select for resistant or sensitive cells.
- Deep sequencing of the gRNA library from surviving tumor cells to identify genes influencing NK cell cytotoxicity.
Main Results:
- Identification of genes that either promote tumor cell sensitivity or confer resistance to NK cell-mediated lysis.
- Validation of individual gene contributions to tumor sensitivity through targeted knockout experiments.
- Demonstration of a workflow applicable to primary tumors for uncovering specific vulnerabilities.
Conclusions:
- The developed CRISPR screening protocol effectively identifies host factors governing tumor cell susceptibility to NK cell attack.
- This approach can reveal tumor-specific vulnerabilities exploitable for novel cancer immunotherapy strategies.
- Findings may guide the development of enhanced NK cell-based therapies, including checkpoint blockade and CAR-NK cell designs.

