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Generation of Knock-out Primary and Expanded Human NK Cells Using Cas9 Ribonucleoproteins
Published on: June 14, 2018
Virus-free CRISPR knock-in of a chimeric antigen receptor into KLRC1 generates potent GD2-specific natural killer
Abstract:
Natural killer (NK) cells are an appealing off-the-shelf, allogeneic cellular therapy due to their cytotoxic profile. However, their activity against solid tumors remains suboptimal in part due to the upregulation of NK-inhibitory ligands, such as HLA-E, within the tumor microenvironment. Here, we utilize CRISPR-Cas9 to disrupt the KLRC1 gene (encoding the HLA-E-binding NKG2A receptor) and perform non-viral insertion of a GD2-targeting chimeric antigen receptor (CAR) within NK cells isolated from human peripheral blood. Genome editing with CRISPR/Cas9 ribonucleoprotein complexes yields efficient genomic disruption of the KLRC1 gene with 98% knockout efficiency and specific knock-in of the GD2 CAR transgene as high as 23%, with minimal off-target activity as shown by CHANGE-Seq, in-out PCR, and next generation sequencing. KLRC1 -GD2 CAR NK cells display high viability and proliferation, as well as precise cellular targeting and potency against GD2 + human melanoma cells. Notably, KLRC1 -GD2 CAR NK cells overcome HLA-E-based inhibition by HLA-E-expressing, GD2 + melanoma cells. Using a single-step, virus-free genome editing workflow, this study demonstrates the feasibility of precisely disrupting inhibitory signaling within NK cells via CRISPR/Cas9 while expressing a CAR to generate potent allogeneic cell therapies against HLA-E + solid tumors.
Insights
This study engineered natural killer (NK) cells to target solid tumors by disrupting inhibitory signals and adding a chimeric antigen receptor (CAR). These enhanced NK cells show potent anti-tumor activity, overcoming tumor defenses.
Area of Science:
- Immunology
- Cellular Therapy
- Cancer Research
Background:
- Natural killer (NK) cells are promising for allogeneic cell therapy due to their cytotoxicity.
- Solid tumor treatment is limited by NK cell inhibition from ligands like HLA-E in the tumor microenvironment.
Approach:
- CRISPR-Cas9 was used to disrupt the KLRC1 gene (encoding NKG2A) in human NK cells.
- A GD2-targeting chimeric antigen receptor (CAR) was inserted non-virally.
- Genome editing achieved 98% KLRC1 knockout and 23% GD2 CAR knock-in with minimal off-target effects.
Key Points:
- Engineered NK cells (KLRC1-GD2 CAR NK) demonstrated high viability and proliferation.
- These cells precisely targeted and potently eliminated GD2+ human melanoma cells.
- KLRC1-GD2 CAR NK cells overcame HLA-E-mediated inhibition from HLA-E+ melanoma cells.
Conclusions:
- A single-step, virus-free genome editing workflow was established.
- This method enables precise disruption of NK cell inhibitory signaling and CAR expression.
- The engineered NK cells represent a feasible allogeneic cell therapy for HLA-E+ solid tumors.
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