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Updated: Jun 22, 2025

Establishment of Gastric Cancer Patient-derived Xenograft Models and Primary Cell Lines
Published on: July 19, 2019
Gastric Cancer Assembloids Derived from Patient-Derived Xenografts: A Preclinical Model for Therapeutic Drug
Xinxin Xu1,2,3, Yunhe Gao3, Jianli Dai4
1Biomanufacturing Center, Department of Mechanical Engineering, Tsinghua University, Beijing, 100084, China.
Abstract:
The construction of reliable preclinical models is crucial for understanding the molecular mechanisms involved in gastric cancer and for advancing precision medicine. Currently, existing in vitro tumor models often do not accurately replicate the human gastric cancer environment and are unsuitable for high-throughput therapeutic drug screening. In this study, droplet microfluidic technology is employed to create novel gastric cancer assembloids by encapsulating patient-derived xenograft gastric cancer cells and patient stromal cells in Gelatin methacryloyl (GelMA)-Gelatin-Matrigel microgels. The usage of GelMA-Gelatin-Matrigel composite hydrogel effectively alleviated cell aggregation and sedimentation during the assembly process, allowing for the handling of large volumes of cell-laden hydrogel and the uniform generation of assembloids in a high-throughput manner. Notably, the patient-derived xenograft assembloids exhibited high consistency with primary tumors at both transcriptomic and histological levels, and can be efficiently scaled up for preclinical drug screening efforts. Furthermore, the drug screening results clearly demonstrated that the in vitro assembloid model closely mirrored in vivo drug responses. Thus, these findings suggest that gastric cancer assembloids, which effectively replicate the in vivo tumor microenvironment, show promise for enabling more precise high-throughput drug screening and predicting the clinical outcomes of various drugs.
Insights
Researchers developed novel gastric cancer assembloids using droplet microfluidics. These models accurately mimic patient tumors, enabling precise, high-throughput drug screening for precision medicine.
Area of Science:
- Oncology
- Biotechnology
- Microfluidics
Background:
- Preclinical models are vital for gastric cancer research and precision medicine.
- Existing in vitro models fail to replicate the human gastric cancer microenvironment and high-throughput screening needs.
Purpose of the Study:
- To develop novel gastric cancer assembloids using droplet microfluidic technology.
- To create a reliable in vitro model for high-throughput drug screening and understanding gastric cancer.
Main Methods:
- Utilized droplet microfluidic technology to encapsulate patient-derived xenograft gastric cancer cells and stromal cells.
- Employed a Gelatin methacryloyl (GelMA)-Gelatin-Matrigel composite hydrogel for uniform assembloid generation.
- Scaled up the process for high-throughput preclinical drug screening.
Main Results:
- Gastric cancer assembloids demonstrated high consistency with primary tumors at transcriptomic and histological levels.
- The composite hydrogel prevented cell aggregation, enabling uniform and high-throughput assembloid production.
- In vitro drug screening results closely mirrored in vivo drug responses.
Conclusions:
- Gastric cancer assembloids effectively replicate the in vivo tumor microenvironment.
- This novel model shows promise for precise, high-throughput drug screening in gastric cancer.
- The assembloids can aid in predicting clinical drug outcomes for personalized medicine.
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