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Updated: Jul 19, 2025

A Novel Stromal Fibroblast-Modulated 3D Tumor Spheroid Model for Studying Tumor-Stroma Interaction and Drug Discovery
Published on: February 28, 2020
Mimicking 3D breast tumor-stromal interactions to screen novel cancer therapeutics
Mariana Domingues1, Catarina Leite Pereira2, Bruno Sarmento3
1i3S - Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Rua Alfredo Allen 208, Porto 4200-135, Portugal; INEB - Instituto de Engenharia Biomédica, Universidade do Porto, Rua Alfredo Allen 208, Porto 4200-135, Portugal; FEUP - Faculdade de Engenharia da Universidade do Porto, Rua Doutor Roberto Frias, Porto 4200-465, Portugal.
Abstract:
Most of the 3D breast tumor models used in drug screening studies only comprise tumor cells, keeping out other essential cell players of the tumor microenvironment. Tumor-associated macrophages and fibroblasts are frequently correlated with tumor progression and therapy resistance, and targeting these cells at the tumor site has been appointed as a promising therapeutic strategy. However, the translation of new therapies to the clinic has been hampered by the absence of cellular models that more closely mimic the features of in vivo breast tumor microenvironment. Therefore, the development of innovative 3D models able to provide consistent and predictive responses about the in vivo efficacy of novel therapeutics is still an unmet preclinical need. Herein, we have established an in vitro 3D heterotypic spheroid model including MCF-7 breast tumor cells, human mammary fibroblasts and human macrophages. To establish this model, different cell densities have been combined and characterized through the evaluation of the spheroid size and metabolic activity, as well as histological and immunohistochemistry analysis of the 3D multicellular structures. The final optimized 3D model consisted in a multicellular spheroid seeded at the initial density of 5000 cells and cell ratio of 1:2:1 (MCF-7:monocytes:fibroblasts). Our model recapitulates several features of the breast tumor microenvironment, including the formation of a necrotic core, spatial organization, and extracellular matrix production. Further, it was validated as a platform for drug screening studies, using paclitaxel, a currently approved drug for breast cancer treatment, and Gefitinib, a chemotherapeutic approved for lung cancer and in preclinical evaluation for breast cancer. Generally, the impact on the cell viability of the 3D model was less evident than in 2D model, reinforcing the relevance of such complex 3D models in addressing novel treatment approaches. Overall, the use of a 3D heterotypic spheroid of breast cancer could be a valuable tool to predict the therapeutic effect of new treatments for breast cancer patients, by recapitulating key features of the breast cancer microenvironment.
Insights
This study developed a 3D breast cancer model with tumor cells, fibroblasts, and macrophages. This advanced spheroid model better predicts drug efficacy by mimicking the tumor microenvironment, addressing a key preclinical need.
Area of Science:
- Oncology
- Biomedical Engineering
- Cell Biology
Background:
- Current 3D breast tumor models lack crucial microenvironment components, limiting their predictive power for drug screening.
- Tumor-associated macrophages and fibroblasts significantly influence tumor progression and therapy resistance.
- Developing in vitro models that accurately mimic the in vivo breast tumor microenvironment is essential for advancing cancer therapeutics.
Purpose of the Study:
- To establish an innovative in vitro 3D heterotypic spheroid model of breast cancer.
- To incorporate tumor cells, fibroblasts, and macrophages to better represent the tumor microenvironment.
- To validate this model as a predictive platform for assessing novel therapeutic efficacy.
Main Methods:
- Established a 3D heterotypic spheroid model using MCF-7 breast tumor cells, human mammary fibroblasts, and human macrophages.
- Optimized cell densities and ratios (1:2:1 MCF-7:monocytes:fibroblasts) at an initial seeding density of 5000 cells.
- Characterized the model via spheroid size, metabolic activity, histological, and immunohistochemistry analyses; validated with paclitaxel and gefitinib.
Main Results:
- The optimized 3D model successfully recapitulated key features of the breast tumor microenvironment, including a necrotic core, spatial organization, and extracellular matrix production.
- Drug screening using paclitaxel and gefitinib showed reduced cell viability impact in the 3D model compared to 2D models, highlighting the model's complexity.
- The model demonstrated its utility in predicting therapeutic effects, offering more relevant outcomes than traditional 2D cultures.
Conclusions:
- The developed 3D heterotypic spheroid model provides a more accurate representation of the breast tumor microenvironment.
- This model serves as a valuable preclinical tool for predicting the therapeutic efficacy of novel breast cancer treatments.
- Its ability to mimic in vivo conditions addresses a critical unmet need in drug development and personalized medicine.
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