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Application status and optimization suggestions of tumor organoids and CAR-T cell co-culture models
Rong-Xuan Ning1,2, Cun-Yu Liu2, Shi-Qi Wang2
1The First Dongguan Affiliated Hospital, Guangdong Medical University, No. 42 Jiaoping Road, Tangxia Town, Dongguan, 523710, Guangdong Province, China.
Abstract:
Tumor organoids, especially patient-derived organoids (PDOs) exhibit marked similarities in histopathological morphology, genomic alterations, and specific marker expression profiles to those of primary tumour tissues. They are applied in various fields including drug screening, gene editing, and identification of oncogenes. However, CAR-T therapy in the treatment of solid tumours is still at an exploratory stage. Tumour organoids offer unique advantages over other preclinical models commonly used for CAR-T therapy research, which the preservation of the biological characteristics of primary tumour tissue is critical for the study of early-stage solid tumour CAR-T therapies. Although some investigators have used this co-culture model to validate newly targeted CAR-T cells, optimise existing CAR-T cells and explore combination therapy strategies, there is still untapped potential in the co-culture models used today. This review introduces the current status of the application of tumour organoid and CAR-T cell co-culture models in recent years and commented on the limitations of the current co-cultivation model. Meanwhile, we compared the tumour organoid model with two pre-clinical models commonly used in CAR-T therapy research. Eventually, combined with the new progress of organoid technologies, optimization suggestions were proposed for the co-culture model from five perspectives: preserving or reconstructing the tumor microenvironment, systematization, vascularization, standardized culture procedures, and expanding the tumor organoids resource library, aimed at assisting related researchers to better utilize co-culture models.
Insights
Patient-derived tumor organoids (PDOs) closely mimic primary tumors and are valuable for CAR-T therapy research. This review explores their co-culture applications, limitations, and optimization strategies for solid tumor treatment.
Area of Science:
- Oncology
- Biotechnology
- Immunotherapy
Background:
- Patient-derived tumor organoids (PDOs) replicate primary tumor characteristics, including morphology and genomic profiles.
- CAR-T therapy for solid tumors is emerging, necessitating advanced preclinical models.
Purpose of the Study:
- To review the current applications and limitations of tumor organoid and CAR-T cell co-culture models.
- To compare organoid models with other preclinical models for CAR-T therapy research.
- To propose optimization strategies for co-culture models based on recent organoid technology advancements.
Main Methods:
- Review of recent literature on tumor organoid and CAR-T cell co-culture models.
- Comparative analysis of organoid models versus traditional preclinical models.
- Identification of key areas for co-culture model improvement.
Main Results:
- Tumor organoids offer unique advantages for studying early-stage solid tumor CAR-T therapies due to preserved biological characteristics.
- Existing co-culture models have untapped potential and limitations.
- Comparison highlights the strengths of organoid models over other preclinical options.
Conclusions:
- Optimization of co-culture models is crucial for advancing CAR-T therapy in solid tumors.
- Key areas for improvement include tumor microenvironment reconstruction, standardization, and resource expansion.
- Enhanced co-culture models will aid researchers in better utilizing these systems for CAR-T therapy development.

