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Highly Efficient Gene Disruption of Murine and Human Hematopoietic Progenitor Cells by CRISPR/Cas9
Published on: April 10, 2018
Generation of murine tumor cell lines deficient in MHC molecule surface expression using the CRISPR/Cas9 system
Krishna Das1, David Eisel1, Clarissa Lenkl1
1GMP & T Cell Therapy Unit, German Cancer Research Center (DKFZ), Heidelberg, Germany.
Abstract:
In this study, the CRISPR/Cas9 technology was used to establish murine tumor cell lines, devoid of MHC I or MHC II surface expression, respectively. The melanoma cell line B16F10 and the murine breast cancer cell line EO-771, the latter stably expressing the tumor antigen NY-BR-1 (EO-NY), were transfected with an expression plasmid encoding a β2m-specific single guide (sg)RNA and Cas9. The resulting MHC I negative cells were sorted by flow cytometry to obtain single cell clones, and loss of susceptibility of peptide pulsed MHC I negative clones to peptide-specific CTL recognition was determined by IFNγ ELISpot assay. The β2m knockout (KO) clones did not give rise to tumors in syngeneic mice (C57BL/6N), unless NK cells were depleted, suggesting that outgrowth of the β2m KO cell lines was controlled by NK cells. Using sgRNAs targeting the β-chain encoding locus of the IAb molecule we also generated several B16F10 MHC II KO clones. Peptide loaded B16F10 MHC II KO cells were insusceptible to recognition by OT-II cells and tumor growth was unaltered compared to parental B16F10 cells. Thus, in our hands the CRISPR/Cas9 system has proven to be an efficient straight forward strategy for the generation of MHC knockout cell lines. Such cell lines could serve as parental cells for co-transfection of compatible HLA alleles together with human tumor antigens of interest, thereby facilitating the generation of HLA matched transplantable tumor models, e.g. in HLAtg mouse strains of the newer generation, lacking cell surface expression of endogenous H2 molecules. In addition, our tumor cell lines established might offer a useful tool to investigate tumor reactive T cell responses that function independently from MHC molecule surface expression by the tumor.
Insights
CRISPR/Cas9 efficiently created MHC knockout tumor cell lines. These MHC I-deficient cells were controlled by NK cells in vivo, while MHC II-deficient cells showed unaltered tumor growth, highlighting their utility in cancer research.
Area of Science:
- Immunology
- Molecular Biology
- Cancer Research
Background:
- Major Histocompatibility Complex (MHC) molecules are crucial for T cell recognition of tumor antigens.
- Disrupting MHC expression on tumor cells can evade immune surveillance but requires efficient genetic tools.
- CRISPR/Cas9 technology offers a precise method for gene editing in cancer cell lines.
Purpose of the Study:
- To establish murine tumor cell lines lacking MHC class I or MHC class II expression using CRISPR/Cas9.
- To investigate the in vivo tumor growth and immune cell recognition of these engineered cell lines.
- To evaluate the utility of these knockout cell lines for developing advanced cancer models.
Main Methods:
- CRISPR/Cas9 gene editing was employed to knock out beta-2-microglobulin (MHC I) and IAb beta-chain (MHC II) in B16F10 and EO-771 tumor cell lines.
- Flow cytometry was used for sorting and validating MHC-deficient single-cell clones.
- Interferon-gamma (IFNγ) ELISpot assays assessed T cell recognition, and tumor growth was monitored in syngeneic mice.
Main Results:
- MHC I-deficient (beta-2-microglobulin knockout) clones did not form tumors in immunocompetent mice, indicating control by Natural Killer (NK) cells.
- Depletion of NK cells led to tumor outgrowth from MHC I-deficient cells.
- MHC II-deficient clones showed no difference in tumor growth compared to parental cells and were resistant to specific T cell recognition.
Conclusions:
- CRISPR/Cas9 is an effective tool for generating MHC knockout cell lines.
- MHC I expression loss confers susceptibility to NK cell-mediated control.
- These MHC-deficient cell lines are valuable tools for studying tumor-immune interactions and developing humanized tumor models.
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