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Updated: Oct 17, 2025

A Novel Stromal Fibroblast-Modulated 3D Tumor Spheroid Model for Studying Tumor-Stroma Interaction and Drug Discovery
Published on: February 28, 2020
Tumor microenvironment-based screening repurposes drugs targeting cancer stem cells and cancer-associated fibroblasts
Pei-Jung Lee1,2, Chao-Chi Ho3, Hao Ho4
1Graduate Institute of Oncology, National Taiwan University College of Medicine, Taipei, 10051, Taiwan.
Abstract:
The tumorous niche may drive the plasticity of heterogeneity and cancer stemness, leading to drug resistance and metastasis, which is the main reason of treatment failure in most cancer patients. The aim of this study was to establish a tumor microenvironment (TME)-based screening to identify drugs that can specifically target cancer stem cells (CSCs) and cancer-associated fibroblasts (CAFs) in the TME. Methods: Lung cancer patient-derived cancer cell and CAFs were utilized to mimic the TME and reproduce the stemness properties of CSCs in vitro and develop a high-throughput drug screening platform with phenotypical parameters. Limiting dilution assay, sphere-forming and ALDH activity assay were utilized to measure the cancer stemness characteristics. In vivo patient-derived xenograft (PDX) models and single-cell RNA sequencing were used to evaluate the mechanisms of the compounds in CSCs and CAFs. Results: The TME-based drug screening platform could comprehensively evaluate the response of cancer cells, CSCs and CAFs to different treatments. Among the 1,524 compounds tested, several drugs were identified to have anti-CAFs, anticancer and anti-CSCs activities. Aloe-emodin and digoxin both show anticancer and anti-CSCs activity in vitro and in vivo, which was further confirmed in the lung cancer PDX model. The combination of digoxin and chemotherapy improved therapeutic efficacy. The single-cell transcriptomics analysis revealed that digoxin could suppress the CSCs subpopulation in CAFs-cocultured cancer cells and cytokine production in CAFs. Conclusions: The TME-based drug screening platform provides a tool to identify and repurpose compounds targeting cancer cells, CSCs and CAFs, which may accelerate drug development and therapeutic application for lung cancer patients.
Insights
This study developed a tumor microenvironment (TME)-based drug screening platform to identify compounds targeting cancer stem cells (CSCs) and cancer-associated fibroblasts (CAFs). Digoxin and aloe-emodin showed promise in preclinical models for lung cancer treatment.
Area of Science:
- Oncology
- Cancer Biology
- Drug Discovery
Background:
- The tumor microenvironment (TME) drives cancer heterogeneity, stemness, drug resistance, and metastasis, leading to treatment failure.
- Cancer stem cells (CSCs) and cancer-associated fibroblasts (CAFs) are key components of the TME that promote tumor progression.
Purpose of the Study:
- To establish a TME-based drug screening platform to identify compounds targeting CSCs and CAFs.
- To evaluate the efficacy and mechanisms of identified compounds in preclinical lung cancer models.
Main Methods:
- Developed a high-throughput drug screening platform using patient-derived lung cancer cells and CAFs to mimic the TME.
- Assessed cancer stemness using limiting dilution, sphere-forming, and ALDH activity assays.
- Utilized patient-derived xenograft (PDX) models and single-cell RNA sequencing for in vivo validation and mechanistic studies.
Main Results:
- Screened 1,524 compounds, identifying several with anti-CAFs, anticancer, and anti-CSCs activities.
- Aloe-emodin and digoxin demonstrated significant anticancer and anti-CSCs effects in vitro and in vivo.
- Digoxin, alone or combined with chemotherapy, improved therapeutic efficacy and suppressed CSC subpopulations and CAF cytokine production.
Conclusions:
- The TME-based screening platform is effective for identifying and repurposing compounds targeting cancer cells, CSCs, and CAFs.
- Digoxin and aloe-emodin are promising candidates for lung cancer therapy.
- This platform can accelerate drug development for lung cancer patients by targeting the complex TME.
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