Related Experiment Video
Updated: Sep 24, 2025

Heteromulticellular Stromal Cells in Scaffold-free 3D Cultures of Epithelial Cancer Cells to Drive Invasion
Published on: April 4, 2025
Intrinsic Differences in Spatiotemporal Organization and Stromal Cell Interactions Between Isogenic Lung Cancer Cells
Maria L Lotsberg1,2,3, Gro V Røsland1,2, Austin J Rayford1,2,4
1Centre for Cancer Biomarkers (CCBIO), Department of Clinical Medicine, Faculty of Medicine, University of Bergen, Bergen, Norway.
Abstract:
The lack of inadequate preclinical models remains a limitation for cancer drug development and is a primary contributor to anti-cancer drug failures in clinical trials. Heterotypic multicellular spheroids are three-dimensional (3D) spherical structures generated by self-assembly from aggregates of two or more cell types. Compared to traditional monolayer cell culture models, the organization of cells into a 3D tissue-like structure favors relevant physiological conditions with chemical and physical gradients as well as cell-cell and cell-extracellular matrix (ECM) interactions that recapitulate many of the hallmarks of cancer in situ. Epidermal growth factor receptor (EGFR) mutations are prevalent in non-small cell lung cancer (NSCLC), yet various mechanisms of acquired resistance, including epithelial-to-mesenchymal transition (EMT), limit the clinical benefit of EGFR tyrosine kinase inhibitors (EGFRi). Improved preclinical models that incorporate the complexity induced by epithelial-to-mesenchymal plasticity (EMP) are urgently needed to advance new therapeutics for clinical NSCLC management. This study was designed to provide a thorough characterization of multicellular spheroids of isogenic cancer cells of various phenotypes and demonstrate proof-of-principle for the applicability of the presented spheroid model to evaluate the impact of cancer cell phenotype in drug screening experiments through high-dimensional and spatially resolved imaging mass cytometry (IMC) analyses. First, we developed and characterized 3D homotypic and heterotypic spheroid models comprising EGFRi-sensitive or EGFRi-resistant NSCLC cells. We observed that the degree of EMT correlated with the spheroid generation efficiency in monocultures. In-depth characterization of the multicellular heterotypic spheroids using immunohistochemistry and high-dimensional single-cell analyses by IMC revealed intrinsic differences between epithelial and mesenchymal-like cancer cells with respect to self-sorting, spatiotemporal organization, and stromal cell interactions when co-cultured with fibroblasts. While the carcinoma cells harboring an epithelial phenotype self-organized into a barrier sheet surrounding the fibroblasts, mesenchymal-like carcinoma cells localized to the central hypoxic and collagen-rich areas of the compact heterotypic spheroids. Further, deep-learning-based single-cell segmentation of IMC images and application of dimensionality reduction algorithms allowed a detailed visualization and multiparametric analysis of marker expression across the different cell subsets. We observed a high level of heterogeneity in the expression of EMT markers in both the carcinoma cell populations and the fibroblasts. Our study supports further application of these models in pre-clinical drug testing combined with complementary high-dimensional single-cell analyses, which in turn can advance our understanding of the impact of cancer-stroma interactions and epithelial phenotypic plasticity on innate and acquired therapy resistance in NSCLC.
Insights
This study developed 3D multicellular spheroids to better model non-small cell lung cancer (NSCLC) drug resistance. These models revealed how cancer cell phenotypes and interactions with stromal cells impact treatment efficacy, advancing preclinical cancer drug development.
Area of Science:
- Cancer Biology and Drug Development
- 3D Cell Culture Models
- Cancer Therapeutics
Background:
- Inadequate preclinical models contribute to anti-cancer drug failures in clinical trials.
- Epidermal growth factor receptor (EGFR) mutations in non-small cell lung cancer (NSCLC) are targeted by EGFR tyrosine kinase inhibitors (EGFRi), but acquired resistance limits efficacy.
- Epithelial-to-mesenchymal plasticity (EMP) is a key mechanism of acquired resistance, necessitating improved preclinical models.
Purpose of the Study:
- To characterize 3D homotypic and heterotypic spheroid models using isogenic cancer cells with varying phenotypes.
- To demonstrate the proof-of-principle for using these spheroid models in drug screening.
- To evaluate the impact of cancer cell phenotype on drug response using high-dimensional imaging mass cytometry (IMC).
Main Methods:
- Development and characterization of 3D homotypic and heterotypic spheroid models with EGFRi-sensitive or EGFRi-resistant NSCLC cells.
- Immunohistochemistry and high-dimensional single-cell analysis using imaging mass cytometry (IMC).
- Deep-learning-based image segmentation and dimensionality reduction for multiparametric analysis of marker expression.
Main Results:
- The degree of epithelial-to-mesenchymal transition (EMT) correlated with spheroid generation efficiency.
- Heterotypic spheroids showed distinct self-sorting and organization patterns based on cancer cell phenotype (epithelial vs. mesenchymal-like).
- High heterogeneity in EMT marker expression was observed in both carcinoma cells and fibroblasts within the spheroids.
Conclusions:
- 3D multicellular spheroid models incorporating epithelial-to-mesenchymal plasticity offer a more physiologically relevant preclinical platform for NSCLC.
- These models, combined with high-dimensional single-cell analyses like IMC, can reveal insights into cancer-stroma interactions and therapy resistance.
- The study supports the application of these advanced models for preclinical drug testing to improve NSCLC therapeutic strategies.

