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In vivo CRISPR screens identify CBX4 as an epigenetic regulator for cancer immunotherapy
Zhibo Ma, Wenlong Jia, Xi Zhou, Jing Liu, Qingwen Li, Ruizhi Chang, Gu Shiqi, Naonao Yuan, Zhishui Chen, Peixiang Lan
Zhibo Ma, Wenlong Jia, Xi Zhou, Jing Liu, Qingwen Li, Ruizhi Chang, Gu Shiqi, Naonao Yuan, Zhishui Chen, Peixiang Lan
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Research Article Immunology Oncology

In vivo CRISPR screens identify CBX4 as an epigenetic regulator for cancer immunotherapy

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Abstract

Epigenetic dysregulation is associated with immune evasion and immune checkpoint blockade (ICB) resistance. Here, using in vivo CRISPR/Cas9 screens targeting epigenetics-related factors in mouse tumor models treated with ICB, we identified chromobox 4 (CBX4) as a key negative regulator of the immune tumor microenvironment (TME). Single-cell RNA-seq and spatial transcriptomics analyses of patients receiving neoadjuvant anti–programmed cell death protein 1 (anti–PD-1) therapy revealed high CBX4 expression in both tumor cells and immunosuppressive tumor-associated macrophage subpopulations, with preferential accumulation in nonresponders. Deficiency of CBX4 in macrophages or tumor cells induced robust antitumor immunity and increased infiltration and the cytotoxic activity of CD8+ T cells and NK cells, thereby heightening the sensitivity of ICB treatment. Mechanistically, CBX4 targeted H3K9me3- and H3K27me3-marked endogenous retroelements such as RLTR4-Mm-int. Loss of CBX4 derepressed retrotransposons, activating cytosolic RNA-sensing pathways and triggering the type I IFN response, ultimately leading to a robustly inflamed TME. Moreover, we uncovered a negative correlation between CBX4 expression, immune responses, and retrotransposon levels, and were able to determine the prognosis of patients with hepatocellular carcinoma (HCC) undergoing ICB therapy. Our study establishes CBX4 as an epigenetic immune checkpoint through the epigenetic silencing of retrotransposons, remodeling the immune TME and thus providing a promising therapeutic target to enhance tumor immunogenicity and overcome immunotherapy resistance.

Authors

Zhibo Ma, Wenlong Jia, Xi Zhou, Jing Liu, Qingwen Li, Ruizhi Chang, Gu Shiqi, Naonao Yuan, Zhishui Chen, Peixiang Lan

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Figure 4

Depletion of CBX4 in macrophages augments CD8+ T cell and NK cell antitumor immunity.

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Depletion of CBX4 in macrophages augments CD8+ T cell and NK cell antitu...
(A) UMAP of T cell subpopulations in WT Hepa1-6 and Cbx4-cKO Hepa1-6 tumors. (B) Distribution of T cell subpopulations. (C) Marker gene expression across defined cell clusters. Bubble size is proportional to the percentage of cells expressing a gene, and color intensity is proportional to average scaled gene expression. (D) Violin plots showing the expression distributions of cytotoxicity-related genes (Gzma, Gzmb, Gzmk, and Nkg7) and the exhaustion-related gene Havcr2 from scRNA-seq of T cell subpopulations in WT Hepa1-6 and Cbx4-cKO Hepa1-6 tumors. (E) Violin plots showing the expression distributions of cytotoxicity-related genes (Gzma, Gzmb, and Nkg7) and NK cell activation–related genes (Il18rap and Il18r1) from scRNA-seq of NK cell subpopulations in WT Hepa1-6 and Cbx4-cKO Hepa1-6 tumors. (F–M) Percentage and number of CD8+ T cells (F), NK cells (G), TNF-α+IFN-γ+CD8+ T cells (H), perforin+granzyme B+CD8+ T cells (I), TNF-α+IFN-γ+ NK cells (J), perforin+granzyme B+ NK cells (K), PD-1+TIM3+CD8+ T cells (L), and PD-1+TIM3–TCF1+TOX+CD8+ T cells (M) in WT and Cbx4-cKO Hepa1-6 tumors (n = 6). Data represent the mean ± SEM. *P < 0.05, **P < 0.01, and ***P < 0.001, by 2-tailed, unpaired Student’s t test (F–M).

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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