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Updated: Jun 27, 2026

Cancer-Associated Fibroblasts from Mouse Mammary Tumors as Tools for Molecular and Computational Studies
Published on: July 3, 2025
Radiation-Induced Alterations in Cancer-Associated Fibroblasts: Drivers of Tumor Radioresistance and Therapeutic
Zheng Shi1, Cuilan Hu2,3, Chao Sun2,3
1College of Biopharmaceutical and Engineering, Lanzhou Jiaotong University, Lanzhou 730000, China.
Abstract:
Radiotherapy serves as a cornerstone of cancer treatment, but its efficacy is often compromised by radioresistance, a process in which cancer-associated fibroblasts (CAFs) play a critical role. Following irradiation, CAFs exhibit inherent radioresistance, not only surviving at higher doses but also undergoing profound functional reprogramming, including senescence, acquisition of a senescence-associated secretory phenotype (SASP), and myofibroblast activation. Importantly, CAFs employ multiple interconnected mechanisms to collectively drive radioresistance: sustained immunosuppression, pro-resistance paracrine signaling, exosome-mediated communication, and stromal remodeling. These reprogrammed CAFs create a microenvironment that paradoxically supports tumor recurrence and limits therapeutic efficacy. Intervention strategies targeting CAFs-including neutralizing soluble factors, blocking key signaling nodes, targeted therapies against fibroblast activation proteins, or disrupting exosome-mediated communication-have shown promise in preclinical studies. A deeper understanding of the complex interactions between radiotherapy and CAFs may ultimately drive a shift in therapeutic strategy from targeting tumor cells alone to leveraging the entire microenvironment to achieve durable antitumor effects.
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