Related Experiment Video
Updated: Aug 15, 2025

Establishing 3-Dimensional Spheroids from Patient-Derived Tumor Samples and Evaluating their Sensitivity to Drugs
Published on: December 16, 2022
Establishing 3-Dimensional Spheroids from Patient-Derived Tumor Samples and Evaluating their Sensitivity to Drugs
Neta Moskovits1, Ella Itzhaki2, Nataly Tarasenko2
1Felsenstein Medical Research Center; Davidoff Center, Rabin Medical Center; neta.moskovits@gmail.com.
Abstract:
Despite remarkable advances in understanding tumor biology, the vast majority of oncology drug candidates entering clinical trials fail, often due to a lack of clinical efficacy. This high failure rate illuminates the inability of the current preclinical models to predict clinical efficacy, mainly due to their inadequacy in reflecting tumor heterogeneity and the tumor microenvironment. These limitations can be addressed with 3-dimensional (3D) culture models (spheroids) established from human tumor samples derived from individual patients. These 3D cultures represent real-world biology better than established cell lines that do not reflect tumor heterogeneity. Furthermore, 3D cultures are better than 2-dimensional (2D) culture models (monolayer structures) since they replicate elements of the tumor environment, such as hypoxia, necrosis, and cell adhesion, and preserve the natural cell shape and growth. In the present study, a method was developed for preparing primary cultures of cancer cells from individual patients that are 3D and grow in multicellular spheroids. The cells can be derived directly from patient tumors or patient-derived xenografts. The method is widely applicable to solid tumors (e.g., colon, breast, and lung) and is also cost-effective, as it can be performed in its entirety in a typical cancer research/cell biology lab without relying on specialized equipment. Herein, a protocol is presented for generating 3D tumor culture models (multicellular spheroids) from primary cancer cells and evaluating their sensitivity to drugs using two complementary approaches: a cell-viability assay (MTT) and microscopic examinations. These multicellular spheroids can be used to assess potential drug candidates, identify potential biomarkers or therapeutic targets, and investigate the mechanisms of response and resistance.
Insights
Developing 3D multicellular spheroids from patient tumors improves preclinical cancer drug testing. These 3D culture models better mimic tumor biology and patient responses than traditional 2D cultures.
Area of Science:
- Oncology
- Biotechnology
- Drug Discovery
Background:
- Most oncology drug candidates fail in clinical trials due to poor predictive preclinical models.
- Current 2D models inadequately represent tumor heterogeneity and the tumor microenvironment.
- 3D culture models (spheroids) offer a more biologically relevant alternative.
Purpose of the Study:
- To develop a method for generating 3D multicellular spheroids from primary patient tumor cells.
- To establish a cost-effective and widely applicable protocol for solid tumors.
- To evaluate drug sensitivity using these 3D models.
Main Methods:
- Primary cancer cells were cultured to form 3D multicellular spheroids.
- Cells were derived from patient tumors or patient-derived xenografts.
- Drug sensitivity was assessed via MTT assay and microscopic examination.
Main Results:
- A reproducible protocol for generating 3D tumor spheroids was established.
- The method is applicable to various solid tumors (colon, breast, lung).
- The 3D spheroids successfully modeled tumor microenvironment elements like hypoxia and necrosis.
Conclusions:
- 3D multicellular spheroids derived from patient tumors provide a superior preclinical model.
- These models enhance the prediction of clinical efficacy for oncology drugs.
- The protocol facilitates drug candidate assessment, biomarker identification, and resistance mechanism studies.

