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Generation of High-Throughput Three-Dimensional Tumor Spheroids for Drug Screening
Published on: September 5, 2018
Uniform Tumor Spheroids on Surface-Optimized Microfluidic Biochips for Reproducible Drug Screening and Personalized
Neda Azizipour1, Rahi Avazpour2, Michael H Weber3,4
1Institut de Génie Biomédical, Polytechnique Montréal, Montréal, QC H3C 3A7, Canada.
Abstract:
Spheroids are recognized for resembling the important characteristics of natural tumors in cancer research. However, the lack of controllability of the spheroid size, form, and density in conventional spheroid culture methods reduces the reproducibility and precision of bioassay results and the assessment of drug-dose responses in spheroids. Nonetheless, the accurate prediction of cellular responses to drug compounds is crucial for developing new efficient therapeutic agents and optimizing existing therapeutic strategies for personalized medicine. We developed a surface-optimized PDMS microfluidic biochip to produce uniform and homogenous multicellular spheroids in a reproducible manner. This platform is surface optimized with 10% bovine serum albumin (BSA) to provide cell-repellent properties. Therefore, weak cell-surface interactions lead to the promotion of cell self-aggregations and the production of compact and uniform spheroids. We used a lung cancer cell line (A549), a co-culture model of lung cancer cells (A549) with (primary human osteoblasts, and patient-derived spine metastases cells (BML, bone metastasis secondary to lung). We observed that the behavior of cells cultured in three-dimensional (3D) spheroids within this biochip platform more closely reflects in vivo-like cellular responses to a chemotherapeutic drug, Doxorubicin, rather than on 24-well plates (two-dimensional (2D) model). It was also observed that the co-culture and patient-derived spheroids exhibited resistance to anti-cancer drugs more than the mono-culture spheroids. The repeatability of drug test results in this optimized platform is the hallmark of the reproducibility of uniform spheroids on a chip. This surface-optimized biochip can be a reliable platform to generate homogenous and uniform spheroids to study and monitor the tumor microenvironment and for drug screening.
Insights
A novel microfluidic biochip creates uniform multicellular spheroids for reproducible cancer drug screening. This 3D model better predicts patient responses than traditional 2D cultures, advancing personalized medicine.
Area of Science:
- Biotechnology
- Cancer Research
- Microfluidics
Background:
- Spheroids mimic natural tumors but conventional methods lack control over size, shape, and density, hindering reproducibility.
- Accurate prediction of cellular drug responses is vital for developing new cancer therapies and personalized medicine.
Purpose of the Study:
- To develop a surface-optimized polydimethylsiloxane (PDMS) microfluidic biochip for reproducible production of uniform multicellular spheroids.
- To assess the utility of this platform for predicting in vivo-like cellular responses to chemotherapeutic drugs.
Main Methods:
- A PDMS microfluidic biochip was surface-optimized with bovine serum albumin (BSA) to create cell-repellent properties, promoting spheroid self-aggregation.
- Lung cancer cell lines (A549), co-cultures (A549 with osteoblasts), and patient-derived cells were cultured in the biochip.
- Cellular responses to Doxorubicin were compared between the 3D biochip platform and 2D cultures.
Main Results:
- The optimized biochip reproducibly generated uniform and homogenous multicellular spheroids.
- 3D spheroids in the biochip showed cellular responses to Doxorubicin that more closely mimicked in vivo conditions compared to 2D cultures.
- Co-culture and patient-derived spheroids demonstrated greater anti-cancer drug resistance than mono-culture spheroids.
Conclusions:
- The surface-optimized biochip provides a reliable platform for generating uniform spheroids, enhancing reproducibility in drug screening.
- This 3D spheroid model offers a more accurate prediction of drug efficacy, supporting the development of personalized cancer therapies.
- The platform is valuable for studying the tumor microenvironment and for high-throughput drug screening.

