Mechanosensitive epitranscriptomics in cancer: linking tumor mechanics, RNA modification, and immune escape

Solid tumors are mechanically abnormal ecosystems in which extracellular matrix stiffening, compressive stress, interstitial pressure, and aberrant fluid flow reshape cancer, stromal, and immune cell behavior. In parallel, the cancer epitranscriptome has emerged as a dynamic regulatory layer in which RNA modifications, including m 6 A, m 5 C, m 7 G, pseudouridine, and A-to-I editing, control RNA stability, translation, splicing, localization, and immune recognition. This review proposes mechanosensitive epitranscriptomics as an integrative framework linking these two fields. We discuss how canonical mechanotransduction pathways, including integrin–FAK signaling, YAP/TAZ activation, PIEZO1-mediated calcium influx, cytoskeletal remodeling, and nuclear deformation, may converge on RNA writers, erasers, readers, editing enzymes, RNA-binding proteins, noncoding RNAs, and ribonucleoprotein condensates. Particular emphasis is placed on the tumor–immune interface, where mechanical stress and RNA modifications jointly influence antigen presentation, interferon signaling, checkpoint expression, metabolic adaptation, T-cell and NK-cell function, myeloid polarization, and immune exclusion. At present, only two studies in the evidence set reviewed here meet the Tier-1 definition in cancer-relevant systems: the PDAC stiffness–METTL14/IGF2BP3–YAP1 study and the macrophage stiffness–FTO–Socs1 study, whereas most broader cancer-specific links remain Tier-3 hypotheses or mechanically confounded associations. We highlight evidence gaps and propose testable models to distinguish direct mechanoregulation from secondary effects of hypoxia, inflammation, and metabolism. Finally, we outline experimental and translational strategies for mapping mechanical niches, defining causal RNA-modification circuits, and developing composite biomarkers that integrate tumor mechanics, epitranscriptomic states, and immunotherapy response.

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Publication Details

Journal
Molecular Cancer
Published
2026-09-14
DOI
https://doi.org/10.1186/s12943-026-02784-6
Primary Topic
RNA modifications and cancer
Type
article
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article

Mechanosensitive epitranscriptomics in cancer: linking tumor mechanics, RNA modification, and immune escape

Ruqiong Wei, Mingyang Jiang, Guichuan Lai, Yuqi Bai et al.
Molecular Cancer
RNA modifications and cancer
article

Mechanosensitive epitranscriptomics in cancer: linking tumor mechanics, RNA modification, and immune escape

Ruqiong Wei, Mingyang Jiang, Guichuan Lai, Yuqi Bai, Jinfeng Meng, Run Shi, Raquel Alarcón Rodríguez, Zhanghui Lin, Sichang Wu, Zhandong Bo, Zheng Wang, Miqi Luo, Tao Wang, Jiali Yao, Chengcheng Zhang, Chengjun Sun, Ke Zhang, Meng Li, Wenyang Zhang
article en

Abstract

Solid tumors are mechanically abnormal ecosystems in which extracellular matrix stiffening, compressive stress, interstitial pressure, and aberrant fluid flow reshape cancer, stromal, and immune cell behavior. In parallel, the cancer epitranscriptome has emerged as a dynamic regulatory layer in which RNA modifications, including m 6 A, m 5 C, m 7 G, pseudouridine, and A-to-I editing, control RNA stability, translation, splicing, localization, and immune recognition. This review proposes mechanosensitive epitranscriptomics as an integrative framework linking these two fields. We discuss how canonical mechanotransduction pathways, including integrin–FAK signaling, YAP/TAZ activation, PIEZO1-mediated calcium influx, cytoskeletal remodeling, and nuclear deformation, may converge on RNA writers, erasers, readers, editing enzymes, RNA-binding proteins, noncoding RNAs, and ribonucleoprotein condensates. Particular emphasis is placed on the tumor–immune interface, where mechanical stress and RNA modifications jointly influence antigen presentation, interferon signaling, checkpoint expression, metabolic adaptation, T-cell and NK-cell function, myeloid polarization, and immune exclusion. At present, only two studies in the evidence set reviewed here meet the Tier-1 definition in cancer-relevant systems: the PDAC stiffness–METTL14/IGF2BP3–YAP1 study and the macrophage stiffness–FTO–Socs1 study, whereas most broader cancer-specific links remain Tier-3 hypotheses or mechanically confounded associations. We highlight evidence gaps and propose testable models to distinguish direct mechanoregulation from secondary effects of hypoxia, inflammation, and metabolism. Finally, we outline experimental and translational strategies for mapping mechanical niches, defining causal RNA-modification circuits, and developing composite biomarkers that integrate tumor mechanics, epitranscriptomic states, and immunotherapy response.

Molecular Cancer
Guangxi Medical University (CN), Shanghai University of Traditional Chinese Medicine (CN), Longhua Hospital Shanghai University of Traditional Chinese Medicine (CN), Nanjing Brain Hospital (CN), First Affiliated Hospital of GuangXi Medical University (CN), Second Affiliated Hospital of Nanjing Medical University (CN), Jiangsu Province Hospital (CN), University of Almería (ES), Southern Medical University (CN), Nanjing Medical University (CN), Chongqing Medical University (CN)
Zero hunger
Openalex Percentile: Top 18%
RNA modifications and cancer
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