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Updated: May 6, 2026

Evaluation of Cancer Stem Cell Migration Using Compartmentalizing Microfluidic Devices and Live Cell Imaging
Published on: December 23, 2011
Dissociable perfusion chip (DPC): perfusable microfluidic chip for single-cell screening of anti-cancer drugs in live
Darragh G Kennedy1, Wenting Zhao2, Terry L Chern1
1Department of Biomedical Engineering, Columbia University, New York, NY 10027, USA. ss2735@columbia.edu.
Abstract:
New approaches are needed to screen anti-cancer drugs that can target specific subpopulations of tumor cells. This study presents a microfluidic chip that enables parallel culture and drug perturbation of five thick tissue slices from human GBM resections, and removes the slices non-destructively for downstream single-cell RNA sequencing (scRNA-seq). Importantly, in contrast to methods relying on chemical attachment of tissue to chip, mechanical clamping of layers allows for positive-pressure perfusion of 3D slices and nondisruptive dissociation of tissue slices from the microfluidic chip. We ran the dissociable perfusion chip (DPC) on slice cultures freshly resected from human glioblastoma (within 1 h of surgery), one of the deadliest forms of malignant brain tumor which exhibits profound intra-tumoral heterogeneity that is challenging to recapitulate even with patient-derived models. DPC maintained similar fluidic conditions between channels and high cell viability in slices, and enabled downstream scRNA-seq to confirm that a topoisomerase inhibitor targets a subpopulation of proliferating tumor cells. Tissues run on DPC showed oxidative stress levels more similar to uncultured GBM slices compared to Transwell culture, as demonstrated by scRNA-seq, fluorometric assessment on a separate human patient sample, and assessment of long-term viability in mouse GBM samples under low and high oxygen tension. Overall, this proof-of-concept work suggests that combining DPC with off-chip scRNA-seq enables rapid, high-resolution identification of cell type-specific drug responses directly in GBM tissue from individual patients. Future work will aim to use this approach for screening of multiple drugs and further validation on additional fresh human GBM slices.
Insights
A new microfluidic chip allows researchers to test anti-cancer drugs on human glioblastoma (GBM) tissue slices. This method preserves tissue, enables drug screening, and identifies drug-specific responses in tumor cell subpopulations.
Area of Science:
- Biomedical Engineering
- Oncology
- Genomics
Background:
- Screening anti-cancer drugs requires methods that can target specific tumor cell subpopulations.
- Human glioblastoma (GBM) exhibits significant intra-tumoral heterogeneity, posing challenges for drug development.
- Existing models struggle to accurately recapitulate GBM's complexity.
Purpose of the Study:
- To develop and validate a novel microfluidic chip for culturing and perturbing human GBM tissue slices.
- To enable non-destructive retrieval of tissue slices for downstream single-cell RNA sequencing (scRNA-seq).
- To assess drug responses and cellular characteristics in a 3D GBM microenvironment.
Main Methods:
- A dissociable perfusion chip (DPC) was designed for parallel culture and drug treatment of five thick human GBM tissue slices.
- Mechanical clamping was used for positive-pressure perfusion and non-disruptive slice retrieval.
- scRNA-seq was performed on retrieved slices to analyze cell type-specific drug responses and tissue characteristics.
Main Results:
- The DPC maintained high cell viability and physiological fluidic conditions in GBM slices.
- scRNA-seq confirmed that a topoisomerase inhibitor targeted a specific subpopulation of proliferating tumor cells.
- DPC-cultured tissues exhibited oxidative stress levels more similar to uncultured GBM slices than Transwell cultures.
Conclusions:
- The DPC combined with off-chip scRNA-seq offers a rapid, high-resolution method for identifying patient-specific, cell type-specific drug responses in GBM.
- This approach holds promise for personalized medicine and accelerated anti-cancer drug screening.
- Future work will focus on multi-drug screening and further validation using additional GBM samples.
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