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Updated: Jan 11, 2026

Cancer-Associated Fibroblasts from Mouse Mammary Tumors as Tools for Molecular and Computational Studies
Published on: July 3, 2025
An Extracellular Matrix-Producing Subset of Cancer-Associated Fibroblasts Drives Chemoresistance in Breast Cancer via
Isabella Hofer1,2, Yann Kieffer1,2, Arianna Mencattini3
1Institut Curie, Stress and Cancer Laboratory, Equipe labélisée par la Ligue Nationale contre le Cancer, PSL Research University, Paris, France.
Abstract:
Chemotherapy resistance remains a major hurdle for treating patients with triple-negative breast cancer (TNBC). Although cancer-associated fibroblasts (CAF) as an overall population have been shown to modulate treatment response, innovative approaches are required to decipher which and how distinct CAF populations drive chemoresistance. In this study, by combining analysis of data from patients with TNBC with ex vivo modeling using tumor-on-chip technology, we identified a specific CAF population, the extracellular matrix-producing myofibroblasts (ECM-myCAF), that mediated resistance to chemotherapy. The proportion of ECM-myCAFs decreased after chemotherapy in chemosensitive patients but remained unchanged in chemoresistant patients. In tumor-on-chip models, primary ECM-myCAFs promoted TNBC cell survival under chemotherapy treatment. Single-cell RNA sequencing, advanced cell imaging, and functional assays showed that ECM-myCAFs activated SRC kinases in TNBC cells, likely through secreted factors, and upregulated the apoptosis regulator G0-G1 switch 2 (G0S2). SRC inhibition or G0S2 silencing completely abolished TNBC cell chemoresistance driven by ECM-myCAFs. Altogether, this work reveals the unique role of the specific ECM-myCAF population and identifies G0S2 as a key player in chemoresistance in TNBC.
Significance:
Integration of patient data with ex vivo tumor-on-chip modeling identifies an extracellular matrix-producing myofibroblast population that contributes to chemoresistance and can be targeted to improve outcomes in triple-negative breast cancer.
Insights
Specific cancer-associated fibroblast populations drive chemotherapy resistance in triple-negative breast cancer (TNBC). Extracellular matrix-producing myofibroblasts (ECM-myCAFs) activate SRC kinases and upregulate G0S2, promoting TNBC cell survival during treatment.
Area of Science:
- Oncology
- Cancer Biology
- Cellular and Molecular Medicine
Background:
- Chemotherapy resistance is a significant challenge in treating triple-negative breast cancer (TNBC).
- Cancer-associated fibroblasts (CAFs) influence treatment response, but specific CAF subtypes driving chemoresistance require elucidation.
Purpose of the Study:
- To identify and characterize distinct CAF populations that contribute to chemotherapy resistance in TNBC.
- To elucidate the molecular mechanisms by which specific CAFs mediate chemoresistance.
Main Methods:
- Analysis of patient data from TNBC cohorts.
- Ex vivo tumor-on-chip (ToC) modeling.
- Single-cell RNA sequencing, advanced cell imaging, and functional assays.
Main Results:
- A specific CAF population, extracellular matrix-producing myofibroblasts (ECM-myCAFs), was identified as mediating chemoresistance.
- ECM-myCAF proportions decreased in chemo-sensitive patients but remained unchanged in chemo-resistant patients post-chemotherapy.
- ECM-myCAFs promoted TNBC cell survival via SRC kinase activation and G0S2 upregulation in TNBC cells.
Conclusions:
- ECM-myCAFs play a unique role in mediating chemotherapy resistance in TNBC.
- G0S2 is identified as a key mediator of chemoresistance driven by ECM-myCAFs.
- Targeting SRC kinases or G0S2 may overcome ECM-myCAF-induced chemoresistance in TNBC.
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