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CRISPR-GEMM Pooled Mutagenic Screening Identifies KMT2D as a Major Modulator of Immune Checkpoint Blockade
Guangchuan Wang1,2,3, Ryan D Chow1,2,3,4, Lvyun Zhu1,2,3
1Department of Genetics, Yale University School of Medicine, New Haven, Connecticut.
Abstract:
Immune checkpoint blockade (ICB) has shown remarkable clinical efficacy in several cancer types. However, only a fraction of patients will respond to ICB. Here, we performed pooled mutagenic screening with CRISPR-mediated genetically engineered mouse models (CRISPR-GEMM) in ICB settings, and identified KMT2D as a major modulator of ICB response across multiple cancer types. KMT2D encodes a histone H3K4 methyltransferase and is among the most frequently mutated genes in patients with cancer. Kmt2d loss led to increased DNA damage and mutation burden, chromatin remodeling, intron retention, and activation of transposable elements. In addition, Kmt2d-mutant cells exhibited increased protein turnover and IFNγ-stimulated antigen presentation. In turn, Kmt2d-mutant tumors in both mouse and human were characterized by increased immune infiltration. These data demonstrate that Kmt2d deficiency sensitizes tumors to ICB by augmenting tumor immunogenicity, and also highlight the power of CRISPR-GEMMs for interrogating complex molecular landscapes in immunotherapeutic contexts that preserve the native tumor microenvironment. SIGNIFICANCE: ICB is ineffective in the majority of patients. Through direct in vivo CRISPR mutagenesis screening in GEMMs of cancer, we find Kmt2d deficiency sensitizes tumors to ICB. Considering the prevalence of KMT2D mutations, this finding potentially has broad implications for patient stratification and clinical decision-making.This article is highlighted in the In This Issue feature, p. 1775.
Insights
KMT2D gene mutations enhance anti-cancer immune responses, sensitizing tumors to immune checkpoint blockade (ICB). This discovery in CRISPR-GEMM models offers potential for patient stratification in ICB therapy.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Immune checkpoint blockade (ICB) is effective for some cancers, but many patients do not respond.
- Identifying biomarkers to predict ICB response is crucial for improving cancer treatment outcomes.
Purpose of the Study:
- To identify genetic factors modulating response to ICB using CRISPR-GEMM.
- To investigate the role of KMT2D in tumor immunogenicity and ICB sensitivity.
Main Methods:
- Pooled CRISPR mutagenesis screening in CRISPR-GEMM.
- Analysis of tumor DNA damage, mutation burden, chromatin, and antigen presentation.
- Assessment of immune cell infiltration in KMT2D-mutant tumors.
Main Results:
- KMT2D loss significantly modulated ICB response across multiple cancer types.
- KMT2D deficiency increased DNA damage, mutation burden, and activated transposable elements.
- KMT2D-mutant tumors showed enhanced antigen presentation and immune infiltration, sensitizing them to ICB.
Conclusions:
- KMT2D deficiency sensitizes tumors to ICB by increasing tumor immunogenicity.
- CRISPR-GEMMs are powerful tools for studying immunotherapy in native tumor microenvironments.
- KMT2D mutations may serve as predictive biomarkers for ICB therapy, aiding patient stratification.

