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Updated: Mar 6, 2026

Physiologic Patient Derived 3D Spheroids for Anti-neoplastic Drug Screening to Target Cancer Stem Cells
Published on: July 5, 2019
Microprinted tumor spheroids enable anti-cancer drug screening
Abstract:
Spheroids present a biologically relevant model of avascular tumors and a unique tool for discovery of anti-cancer drugs. Despite being used in research laboratories for several decades, spheroids are not routinely used for drug discovery primarily due to the difficulty of mass-producing uniformly-sized spheroids and intense labor involved in handling, drug treatment, and analyzing them. We overcome this barrier using a novel technology to robotically microprint spheroids in standard 384-well plates. An aqueous drop containing cancer cells is dispensed into a bath of a second, immiscible aqueous phase. The drop maintains cells in close proximity to aggregate into a single spheroid. Using U-87 MG brain cancer cells, we show that this approach produces spheroids of well-defined size with ~10% deviation from their mean diameter. We demonstrate the feasibility of robotic, high throughput compound screening against tumor spheroids using a collection of 25 standard chemotherapeutics and molecular inhibitors against U-87 MG spheroids. Each drug is used in a wide range of concentrations. Viability of cancer cells in drug-treated spheroids is measured using a PrestoBlue assay. Morphological changes are used as a secondary measure for analysis of drug effect. We identify several compounds that effectively inhibit growth of spheroids. To generate a scoring system for effectiveness of drugs, we use half-maximum inhibitory concentration (IC50), maximum inhibition (Emax), and area under the dose-response curve (AUC) to present a multi-parametric approach that takes into account both potency and efficacy of drugs. Our robotic technology offers a low cost and convenient platform for screening large collections of chemical compounds against realistic tumor models prior to expensive and tedious in vivo tests, dramatically improving testing throughput and efficiency, and reducing costs.
Insights
Robotic microprinting enables mass production of uniform tumor spheroids for efficient anti-cancer drug discovery. This high-throughput screening platform accelerates the identification of potent cancer therapeutics.
Area of Science:
- Biotechnology
- Cancer Research
- Drug Discovery
Background:
- Spheroids are biologically relevant models for avascular tumors and anti-cancer drug discovery.
- Challenges in mass-producing uniform spheroids and labor-intensive processes hinder routine drug discovery.
- Existing methods are not optimized for high-throughput screening of anti-cancer drugs.
Purpose of the Study:
- To develop a novel robotic technology for mass-producing uniformly-sized spheroids.
- To establish a high-throughput screening platform for anti-cancer drug discovery using spheroids.
- To identify effective anti-cancer compounds using a multi-parametric scoring system.
Main Methods:
- Robotic microprinting of spheroids using immiscible aqueous phases.
- Utilizing U-87 MG brain cancer cells to form well-defined spheroids.
- High-throughput screening of 25 chemotherapeutics and inhibitors against spheroids.
- Assessing drug efficacy via cell viability (PrestoBlue assay) and morphological changes.
- Employing IC50, Emax, and AUC for a multi-parametric drug scoring system.
Main Results:
- Successfully produced uniformly-sized spheroids with ~10% diameter deviation.
- Demonstrated feasibility of robotic, high-throughput compound screening against tumor spheroids.
- Identified several compounds that effectively inhibit spheroid growth.
- Developed a scoring system integrating potency and efficacy for drug evaluation.
Conclusions:
- Robotic microprinting overcomes barriers to spheroid-based drug discovery.
- The platform offers a low-cost, efficient method for screening compounds against realistic tumor models.
- This technology significantly improves throughput and reduces costs for anti-cancer drug development.

