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Updated: Jan 16, 2026

Generation of High-Throughput Three-Dimensional Tumor Spheroids for Drug Screening
Published on: September 5, 2018
Cancer 3D Models: Essential Tools for Understanding and Overcoming Drug Resistance
Sofija Jovanović Stojanov1, Marija Grozdanić1, Mila Ljujić2
1Institute for Biological Research "Siniša Stanković"-National Institute of the Republic of Serbia, University of Belgrade, Bulevar Despota Stefana 142, Belgrade, 11108, Serbia.
Abstract:
Anticancer drug resistance remains a major challenge in cancer treatment hindering the efficacy of chemotherapy and targeted therapies. Conventional two-dimensional (2D) cell cultures cannot replicate the complexity of the in vivo tumor microenvironment (TME), limiting their utility for drug resistance research. Therefore, three-dimensional (3D) tumor models have proven to be a promising alternative for investigating chemoresistance mechanisms. In this review, various cancer 3D models, including spheroids, organoids, scaffold-based models, and bioprinted models, are comprehensively evaluated with a focus on their application in drug resistance studies. We discuss the materials, properties, and advantages of each model, highlighting their ability to better mimic the TME and represent complex mechanisms of drug resistance such as epithelial-mesenchymal transition (EMT), drug efflux, and tumor-stroma interactions. Furthermore, we investigate the limitations of these models, including scalability, reproducibility and technical challenges, as well as their potential therapeutic impact on personalized medicine. Through a thorough comparison of model performance, we provide insights into the strengths and weaknesses of each approach and offer guidance for model selection based on specific research needs.
Insights
Three-dimensional (3D) tumor models offer a superior alternative to traditional 2D cultures for studying anticancer drug resistance. These advanced models better mimic the tumor microenvironment (TME), aiding in the development of more effective cancer therapies.
Area of Science:
- Oncology
- Biomedical Engineering
- Drug Discovery
Background:
- Anticancer drug resistance poses a significant challenge in cancer therapy.
- Traditional 2D cell cultures inadequately represent the in vivo tumor microenvironment (TME).
Purpose of the Study:
- To review and evaluate various 3D tumor models for their application in drug resistance research.
- To compare the strengths and limitations of different 3D cancer models.
Main Methods:
- Comprehensive review of existing literature on cancer 3D models.
- Evaluation of spheroids, organoids, scaffold-based, and bioprinted models.
- Analysis of model applicability in studying chemoresistance mechanisms.
Main Results:
- 3D models like spheroids, organoids, and bioprinted constructs better mimic the TME than 2D cultures.
- These models facilitate the study of complex resistance mechanisms such as EMT and drug efflux.
- Limitations include scalability, reproducibility, and technical challenges.
Conclusions:
- 3D tumor models are crucial for advancing drug resistance research and understanding cancer biology.
- These models hold potential for personalized medicine and optimizing therapeutic strategies.
- Guidance is provided for selecting appropriate 3D models based on research objectives.
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