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.

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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