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Updated: Jun 19, 2026

Generation of Tumor Organoids from Genetically Engineered Mouse Models of Prostate Cancer
Published on: June 13, 2019
Tumor organoids: synergistic applications, current challenges, and future prospects in cancer therapy
Jingjing Qu1,2, Farhin Shaheed Kalyani1, Li Liu2
1Department of Respiratory Disease, Thoracic Disease Center, The First Affiliated Hospital, College of Medicine, Zhejiang University, Hangzhou, Zhejiang, 310003, P. R. China.
Abstract:
Patient-derived cancer cells (PDCs) and patient-derived xenografts (PDXs) are often used as tumor models, but have many shortcomings. PDCs not only lack diversity in terms of cell type, spatial organization, and microenvironment but also have adverse effects in stem cell cultures, whereas PDX are expensive with a low transplantation success rate and require a long culture time. In recent years, advances in three-dimensional (3D) organoid culture technology have led to the development of novel physiological systems that model the tissues of origin more precisely than traditional culture methods. Patient-derived cancer organoids bridge the conventional gaps in PDC and PDX models and closely reflect the pathophysiological features of natural tumorigenesis and metastasis, and have led to new patient-specific drug screening techniques, development of individualized treatment regimens, and discovery of prognostic biomarkers and mechanisms of resistance. Synergistic combinations of cancer organoids with other technologies, for example, organ-on-a-chip, 3D bio-printing, and CRISPR-Cas9-mediated homology-independent organoid transgenesis, and with treatments, such as immunotherapy, have been useful in overcoming their limitations and led to the development of more suitable model systems that recapitulate the complex stroma of cancer, inter-organ and intra-organ communications, and potentially multiorgan metastasis. In this review, we discuss various methods for the creation of organ-specific cancer organoids and summarize organ-specific advances and applications, synergistic technologies, and treatments as well as current limitations and future prospects for cancer organoids. Further advances will bring this novel 3D organoid culture technique closer to clinical practice in the future.
Insights
Patient-derived cancer organoids offer a superior alternative to traditional models, accurately reflecting tumor complexity for personalized medicine and drug discovery. These advanced 3D models overcome limitations of patient-derived cells and xenografts.
Area of Science:
- Oncology
- Biotechnology
- 3D Cell Culture
Background:
- Traditional cancer models like patient-derived cells (PDCs) and xenografts (PDXs) have limitations in diversity, cost, and success rates.
- These models fail to fully recapitulate the complex tumor microenvironment and spatial organization.
Purpose of the Study:
- To review the development and applications of patient-derived cancer organoids as advanced tumor models.
- To highlight how organoids overcome limitations of traditional models and enable personalized medicine.
Main Methods:
- Discusses methods for creating organ-specific cancer organoids.
- Explores synergistic combinations of organoids with technologies like organ-on-a-chip and CRISPR-Cas9.
- Reviews integration with treatments such as immunotherapy.
Main Results:
- Patient-derived cancer organoids closely mimic tumorigenesis and metastasis.
- Organoids facilitate patient-specific drug screening and personalized treatment strategies.
- Synergistic approaches enhance model suitability for recapitulating cancer stroma and inter-organ communication.
Conclusions:
- Cancer organoids represent a significant advancement over PDCs and PDXs.
- These 3D models hold promise for improved drug development, biomarker discovery, and clinical applications.
- Further research will advance organoid technology towards clinical practice.
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