Cancer-associated fibroblast–tumor organoid models of therapy resistance: mechanisms, materials, and translational potential

Therapy resistance in solid tumors is shaped not only by cancer-cell evolution but also by cancer-associated fibroblasts (CAFs), which regulate signaling, extracellular-matrix organization, metabolism, and immune-cell access. Patient-derived tumor organoids reconstituted with CAFs offer a tractable human system for resolving these stromal effects while preserving epithelial heterogeneity and three-dimensional architecture. This narrative review examines how CAF heterogeneity, plasticity, tissue origin, passage history, and autologous pairing influence model behavior; compares matrix-embedded, spatially organized, microfluidic, perfused, and bioprinted platforms; and evaluates the materials parameters that govern mechanotransduction, transport, and drug response. We distinguish mechanisms directly demonstrated in CAF–organoid co-cultures from those inferred from two-dimensional, animal, or non-organoid studies, with particular attention to paracrine and contact-dependent signaling, extracellular-matrix mechanics, metabolic coupling, and immune regulation. Current evidence shows that CAF inclusion can reveal patient-dependent resistance and reciprocal tumor–stroma state changes that are not apparent in epithelial monoculture. However, culture medium, matrix composition, cell ratio, spatial organization, and CAF-state drift remain major sources of bias. CAF–organoid models may support mechanism-guided combination testing and functional precision oncology, but their added predictive value requires standardized reporting, multicenter benchmarking, and prospective clinical validation.

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Publication Details

Journal
Materials Today Advances
Published
2026-09-16
DOI
https://doi.org/10.1016/j.mtadv.2026.100976
Primary Topic
Cancer Cells and Metastasis
Type
article
Field-Weighted Citation Impact
0.00

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article

Cancer-associated fibroblast–tumor organoid models of therapy resistance: mechanisms, materials, and translational potential

Bingwen Zou, Ying‐Hong Feng, Junjie Wang, Gouping Ding et al.
Materials Today Advances
Cancer Cells and Metastasis
article

Cancer-associated fibroblast–tumor organoid models of therapy resistance: mechanisms, materials, and translational potential

Bingwen Zou, Ying‐Hong Feng, Junjie Wang, Gouping Ding, Yiping Huang, Qianqian Wang, Xiaodong Wang
article en

Abstract

Therapy resistance in solid tumors is shaped not only by cancer-cell evolution but also by cancer-associated fibroblasts (CAFs), which regulate signaling, extracellular-matrix organization, metabolism, and immune-cell access. Patient-derived tumor organoids reconstituted with CAFs offer a tractable human system for resolving these stromal effects while preserving epithelial heterogeneity and three-dimensional architecture. This narrative review examines how CAF heterogeneity, plasticity, tissue origin, passage history, and autologous pairing influence model behavior; compares matrix-embedded, spatially organized, microfluidic, perfused, and bioprinted platforms; and evaluates the materials parameters that govern mechanotransduction, transport, and drug response. We distinguish mechanisms directly demonstrated in CAF–organoid co-cultures from those inferred from two-dimensional, animal, or non-organoid studies, with particular attention to paracrine and contact-dependent signaling, extracellular-matrix mechanics, metabolic coupling, and immune regulation. Current evidence shows that CAF inclusion can reveal patient-dependent resistance and reciprocal tumor–stroma state changes that are not apparent in epithelial monoculture. However, culture medium, matrix composition, cell ratio, spatial organization, and CAF-state drift remain major sources of bias. CAF–organoid models may support mechanism-guided combination testing and functional precision oncology, but their added predictive value requires standardized reporting, multicenter benchmarking, and prospective clinical validation.

Materials Today AdvancesVol. 32
Central South University (CN), Sichuan University (CN), Sichuan Cancer Hospital (CN), Zhuzhou Central Hospital (CN), Second Xiangya Hospital of Central South University (CN)
National Major Science and Technology Projects of China
Openalex Percentile: Top 14%
Cancer Cells and Metastasis
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