Evidence map›Paper›PMID 41776659›Full record

ArticleJournal of experimental & clinical cancer research : CR2026

Mutant p53 epigenetically rewires CXCL10 to promote CD8⁺ T-cell infiltration and enhance the anti-PD-1 response in advanced prostate cancer.

Jia Chen, Qintao Ge, Jun He, Zichen Bian, Haoming Yu, Chun Li, Jialin Meng, Shuiping Yin, Zongyao Hao, Chaozhao Liang and 1 more

Abstract read
In one paragraph

Article in Journal of experimental & clinical cancer research : CR, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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0citing papers in PubMed
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1 · What the graph read from it

What it found

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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

The trial behind it

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Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

0 citing papers in PubMed.

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4 · The record

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5 · Who and what money

Authors and funding

11 authors.

Jia Chen *Department of Urology, The First Affiliated Hospital of Anhui Medical University, Institute of Urology, and Anhui Province Key Laboratory of Genitourinary Diseases, Anhui Medical University, Jixi Road 218, Shushan District, Hefei, Anhui, 230022, People's Republic of China.
Qintao Ge *Department of Urology, Fudan University Shanghai Cancer Center; Center; Department of Oncology, Shanghai Medical College, Fudan University, Shanghai, 200032, P. R. China.
Jun He *Department of Urology, The First Affiliated Hospital of Anhui Medical University, Institute of Urology, and Anhui Province Key Laboratory of Genitourinary Diseases, Anhui Medical University, Jixi Road 218, Shushan District, Hefei, Anhui, 230022, People's Republic of China.
Zichen BianDepartment of Urology, The First Affiliated Hospital of Anhui Medical University, Institute of Urology, and Anhui Province Key Laboratory of Genitourinary Diseases, Anhui Medical University, Jixi Road 218, Shushan District, Hefei, Anhui, 230022, People's Republic of China.
Haoming YuDepartment of Statistics and Data science, College of Letter and Science, University of California Santa Barbara, 552 University Road, Santa Barbara, CA, 93106, United States of America.
Chun LiDepartment of Urology, The First Affiliated Hospital of Anhui Medical University, Institute of Urology, and Anhui Province Key Laboratory of Genitourinary Diseases, Anhui Medical University, Jixi Road 218, Shushan District, Hefei, Anhui, 230022, People's Republic of China.
Jialin MengDepartment of Urology, The First Affiliated Hospital of Anhui Medical University, Institute of Urology, and Anhui Province Key Laboratory of Genitourinary Diseases, Anhui Medical University, Jixi Road 218, Shushan District, Hefei, Anhui, 230022, People's Republic of China.
Shuiping YinDepartment of Urology, The First Affiliated Hospital of Anhui Medical University, Institute of Urology, and Anhui Province Key Laboratory of Genitourinary Diseases, Anhui Medical University, Jixi Road 218, Shushan District, Hefei, Anhui, 230022, People's Republic of China.
Zongyao HaoDepartment of Urology, The First Affiliated Hospital of Anhui Medical University, Institute of Urology, and Anhui Province Key Laboratory of Genitourinary Diseases, Anhui Medical University, Jixi Road 218, Shushan District, Hefei, Anhui, 230022, People's Republic of China.
Chaozhao LiangDepartment of Urology, The First Affiliated Hospital of Anhui Medical University, Institute of Urology, and Anhui Province Key Laboratory of Genitourinary Diseases, Anhui Medical University, Jixi Road 218, Shushan District, Hefei, Anhui, 230022, People's Republic of China. liang_chaozhao@ahmu.edu.cn.
Meng ZhangDepartment of Urology, The First Affiliated Hospital of Anhui Medical University, Institute of Urology, and Anhui Province Key Laboratory of Genitourinary Diseases, Anhui Medical University, Jixi Road 218, Shushan District, Hefei, Anhui, 230022, People's Republic of China. zhangmeng@ahmu.edu.cn.

Funding

the Anhui Province Higher Education Science Research Project Outstanding Youth Research Project 2024AH030029the Clinical Medical Research Translational Project of Anhui Province 202204295107020007 & 202204295107020031the Clinical Medical Research Translational Project of Anhui Province 211013672036the National Natural Science Foundation of China 82470800, 82170787, 82200860, and 82102788the Natural Science Foundation of Anhui Province 2308085MH247the Research Fund of Anhui Institute of Translational Medicine 2022zhyx-B13
6 · The paper itself

Abstract

backgroundTP53 mutations are frequently linked to an immunosuppressive tumor microenvironment and resistance to immune checkpoint blockade (ICB). However, their mechanistic role in shaping antitumor immunity in advanced prostate cancer remains unclear.

methodsWe generated CRISPR-Cas9-engineered murine prostate cancer models harboring the Trp53 p.R245Q knock-in mutation (orthologous to human TP53 p.R248Q). Tumor growth and response to anti-PD-1 therapy were evaluated in vivo. Single-cell RNA sequencing and integrated immune profiling were performed to characterize stromal and immune remodeling. Chromatin immunoprecipitation assays were used to assess mutant p53 binding and histone modifications at the Cxcl10 promoter. Statistical significance was assessed using Student’s t-test, Wilcoxon rank-sum test, and one-/two-way ANOVA, as appropriate.

resultsMutant p53 accelerated tumor progression yet unexpectedly enhanced responsiveness to anti-PD-1 therapy within an otherwise suppressive microenvironment. Single-cell transcriptomics revealed epithelial lineage and metabolic rewiring, accompanied by depletion of cancer-associated fibroblasts and a shift toward immune-permissive stromal states. Immune profiling demonstrated increased infiltration of cytotoxic CD8⁺ granzyme B⁺ T cells and augmented lymphoid and vascular features. Mechanistically, mutant p53 occupied the Cxcl10 promoter, remodeled local chromatin by enriching H3K4me3 while reducing repressive histone marks, and transcriptionally upregulated Cxcl10. This established a CXCL10–CXCR3 chemotactic axis that promoted recruitment of cytotoxic CD8⁺ T cells and sensitized tumors to PD-1 blockade. Consistently, cohort analysis further supported that high CXCL10 expression correlated with immune activation and clinical benefit from ICB.

conclusionsThese findings indicate that mutant p53 can reprogram immune-cold prostate tumors into immune-hot ecosystems through coordinated epigenetic, metabolic, and stromal-immune remodeling. TP53 mutation status may therefore inform patient stratification and combinatorial immunotherapeutic strategies targeting the CXCL10–CXCR3 axis.

Indexed as

CD8-Positive T-LymphocytesChemokine CXCL10Immune Checkpoint InhibitorsProstatic NeoplasmsTumor Suppressor Protein p53AnimalsCell Line, TumorEpigenesis, GeneticHumansLymphocytes, Tumor-InfiltratingMaleMiceMutationProgrammed Cell Death 1 ReceptorTumor MicroenvironmentChemokine CXCL10Cxcl10 protein, mouseImmune Checkpoint InhibitorsProgrammed Cell Death 1 ReceptorTumor Suppressor Protein p53CD8 + T cellCXCL10-CXCR3 axisMutant p53Prostate cancerSingle-cell RNA sequencing

Identifiers

PMID41776659
PMCPMC13003701

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.