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Updated: Dec 8, 2025

Measuring Real-time Drug Response in Organotypic Tumor Tissue Slices
Published on: May 2, 2020
High-Throughput Tumor-on-a-Chip Platform to Study Tumor-Stroma Interactions and Drug Pharmacokinetics
Chun-Wei Chi1, Yeh-Hsing Lao2, A H Rezwanuddin Ahmed1
1Department of Biomedical Engineering, CUNY- The City College of New York, New York, NY, 10031, USA.
Abstract:
Drug screening in oncology, especially for triple-negative breast cancer (TNBC), has high demand but remains unsatisfactory. Currently available models are either nonrepresentative of the complex tumor microenvironment or only suitable for low throughput screening, resulting in a low-yield success for drug development. To tackle these issues, the L-TumorChip system is developed in this study. It is a three-layered microfluidic tumor-on-a-chip platform integrating tumor microvasculature and tumor-stromal microenvironment with high throughput screening capability. Its layered and modular design is readily scalable through simple integration of multiple units. Here, L-TumorChip is validated with a TNBC model. The L-TumorChip system emulates certain tumor-stroma complexities and tumor-endothelium interactions, including TNBC invasion through the leaky microvasculature and angiogenesis. Additionally, with this L-TumorChip, the influence of different stromal cells, including normal fibroblasts, mesenchymal stem cells, and cancer-associated fibroblasts (CAF), on cancer cell growth as well as the stromal effects on drug responses to doxorubicin treatment is investigated. The presence of CAF delays drug pharmacokinetics, while apoptotic responses indicated by caspase-3 activities are higher in coculture with normal fibroblasts. Collectively, the L-TumorChip system represents a translational high-throughput screening toolkit that enables drug screening with a scenario closer to the in vivo conditions. This potential use may therefore facilitate development of new cancer drugs.
Insights
A new L-TumorChip platform enables high-throughput drug screening for triple-negative breast cancer (TNBC) by mimicking the tumor microenvironment. This system improves cancer drug development by providing more accurate in vivo-like screening conditions.
Area of Science:
- Oncology
- Biomedical Engineering
- Drug Discovery
Background:
- Current drug screening models for triple-negative breast cancer (TNBC) fail to accurately represent the tumor microenvironment and lack high-throughput capabilities.
- This limitation leads to low success rates in developing effective cancer therapeutics.
Purpose of the Study:
- To develop and validate the L-TumorChip, a novel microfluidic platform for high-throughput drug screening in TNBC.
- To emulate the complex tumor microenvironment, including microvasculature and stromal interactions.
Main Methods:
- Development of a three-layered microfluidic tumor-on-a-chip system (L-TumorChip) integrating tumor microvasculature and stromal components.
- Validation of the L-TumorChip using a TNBC model to assess tumor cell invasion, angiogenesis, and drug response.
- Investigation of the impact of various stromal cells (fibroblasts, mesenchymal stem cells, cancer-associated fibroblasts) on cancer cell behavior and drug efficacy.
Main Results:
- The L-TumorChip successfully emulated TNBC invasion through leaky microvasculature and angiogenesis.
- Cancer-associated fibroblasts (CAFs) were shown to delay drug pharmacokinetics.
- Coculture with normal fibroblasts resulted in higher caspase-3 activity, indicating increased apoptosis.
Conclusions:
- The L-TumorChip system offers a scalable, high-throughput screening solution that closely mimics in vivo conditions for cancer drug development.
- This platform has the potential to accelerate the discovery and development of new oncology drugs, particularly for TNBC.
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