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Updated: Jan 4, 2026

Cancer-Associated Fibroblasts from Mouse Mammary Tumors as Tools for Molecular and Computational Studies
Published on: July 3, 2025
Tumor-Associated Fibroblasts Promote HER2-Targeted Therapy Resistance through FGFR2 Activation
Patricia Fernández-Nogueira1,2, Mario Mancino1,2, Gemma Fuster1
1Molecular and Translational Oncology Group, Institut d'Investigacions Biomediques August Pi i Sunyer (IDIBAPS), Barcelona, Spain.
Purpose:
Despite the therapeutic success of existing HER2-targeted therapies, tumors invariably relapse. This study aimed at identifying new mechanisms responsible for HER2-targeted therapy resistance.
Experimental Design:
We have used a platform of HER2-targeted therapy-resistant cell lines and primary cultures of healthy and tumor-associated fibroblasts (TAF) to identify new potential targets related to tumor escape from anti-HER2 therapies.
Results:
We have shown that TAFs promote resistance to HER2-targeted therapies. TAFs produce and secrete high levels of FGF5, which induces FGFR2 activation in the surrounding breast cancer cells. FGFR2 transactivates HER2 via c-Src, leading to resistance to HER2-targeted therapies. In vivo, coinoculating nonresistant cell lines with TAFs results in more aggressive and resistant tumors. Resistant cells activate fibroblasts and secrete FGFR ligands, creating a positive feedback loop that fuels resistance. FGFR2 inhibition not only inhibits HER2 activation, but also induces apoptosis in cells resistant to HER2-targeted therapies. In vivo, inhibitors of FGFR2 reverse resistance and resensitize resistant cells to HER2-targeted therapies. In HER2 patients' samples, α-SMA, FGF5, and FGFR2 contribute to poor outcome and correlate with c-Src activation. Importantly, expression of FGF5 and phospho-HER2 correlated with a reduced pathologic complete response rate in patients with HER2-positive breast cancer treated with neoadjuvant trastuzumab, which highlights the significant role of TAFs/FGF5 in HER2 breast cancer progression and resistance.
Conclusions:
We have identified the TAF/FGF5/FGFR2/c-Src/HER2 axis as an escape pathway responsible for HER2-targeted therapy resistance in breast cancer, which can be reversed by FGFR inhibitors.
Insights
Tumor-associated fibroblasts (TAFs) drive resistance to HER2-targeted therapies by secreting FGF5, activating FGFR2, and creating a feedback loop. FGFR2 inhibitors can overcome this resistance and resensitize tumors to HER2-targeted treatments.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Existing HER2-targeted therapies are effective but tumors frequently develop resistance.
- Understanding resistance mechanisms is crucial for improving breast cancer treatment outcomes.
Purpose of the Study:
- To identify novel mechanisms driving resistance to HER2-targeted therapies.
- To investigate the role of tumor-associated fibroblasts (TAFs) in mediating this resistance.
Main Methods:
- Utilized HER2-targeted therapy-resistant cell lines and primary fibroblast cultures.
- Investigated the TAF/FGF5/FGFR2/c-Src/HER2 signaling axis.
- Validated findings in preclinical models and patient samples.
Main Results:
- TAFs promote resistance by secreting FGF5, activating FGFR2, which then transactivates HER2 via c-Src.
- A positive feedback loop between cancer cells and TAFs fuels resistance.
- FGFR2 inhibition reversed resistance, induced apoptosis, and resensitized tumors to HER2-targeted therapies in vivo.
- FGF5 and FGFR2 expression correlated with poor outcomes in HER2-positive breast cancer patients.
Conclusions:
- The TAF/FGF5/FGFR2/c-Src/HER2 axis is a key escape pathway in HER2-targeted therapy resistance.
- FGFR2 inhibitors represent a promising strategy to overcome resistance and improve treatment efficacy.
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