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Updated: Aug 7, 2026

Establishment of Pancreatic Cancer-Derived Tumor Organoids and Fibroblasts From Fresh Tissue
Published on: May 26, 2023
Patient-derived organoids in functional precision oncology: from experimental models to clinical decision-making
Amanda Caruso1, A Delvecchio1,2, R Memeo1,2
1Department of Medicine and Surgery, LUM University "Giuseppe Degennaro", Casamassima, Bari, Italy.
Abstract:
Despite major advances in high-throughput genomics, proteomics, and multimodal imaging, a substantial gap persists between molecular tumor characterization and clinically actionable therapeutic decision-making, partly due to the limitations of conventional preclinical models in capturing tumor heterogeneity and predicting patient-specific drug response. Patient-derived organoids (PDO) have emerged as a promising platform to bridge this gap by enabling functional interrogation of individual tumors in a physiologically relevant three-dimensional context. PDO retain the genomic, transcriptomic, and histopathological features of their parental tumors while supporting long-term expansion, biobanking, and high-throughput pharmacological testing. In this review, we provide a clinically oriented overview of PDO technology as a key tool in functional precision oncology, summarizing current methodologies for tissue processing, organoid derivation, and quality control. We examine applications across multiple cancer types, including drug screening, radiotherapy response modeling, immuno-oncology co-culture systems, and CRISPR-based functional genomics, highlighting their role in directly measuring therapeutic vulnerability. We also integrate tumor-specific evidence across major malignancies, including colorectal, pancreatic, and breast cancers, where PDO-based pharmacotyping shows strong concordance with clinical outcomes and is increasingly incorporated into prospective trials. Finally, we discuss the integration of PDO with emerging technologies, including organoid-on-chip systems, artificial intelligence-driven analytics, and hospital-integrated workflows, as a critical innovation layer that is redefining their clinical applicability. These integrative approaches move PDO beyond static ex vivo models toward dynamic, and decision-support systems, with the potential to substantially enhance predictive accuracy and real-time therapeutic stratification. Collectively, these advances position PDOs as a promising component in next-generation precision oncology, supporting a transition from static genomics-based stratification toward dynamic, functionally guided therapeutic decision-making.
Insights
Patient-derived organoids (PDO) offer a powerful tool for functional precision oncology. These models bridge the gap between molecular tumor data and clinical decisions, improving drug response prediction and therapeutic stratification.
Area of Science:
- Oncology
- Biotechnology
- Genomics
Background:
- Conventional preclinical models struggle to capture tumor heterogeneity and predict patient-specific drug responses.
- A gap exists between molecular tumor characterization and clinically actionable therapeutic decisions.
Purpose of the Study:
- To provide a clinically oriented overview of patient-derived organoid (PDO) technology for functional precision oncology.
- To summarize methodologies, applications, and future directions of PDOs in cancer research and treatment.
Main Methods:
- Review of current methodologies for PDO processing, derivation, and quality control.
- Examination of PDO applications in drug screening, radiotherapy response, immuno-oncology, and functional genomics.
Main Results:
- PDOs retain parental tumor features and enable high-throughput drug testing.
- PDO-based pharmacotyping shows strong clinical outcome concordance in colorectal, pancreatic, and breast cancers.
- Integration with emerging technologies enhances PDO predictive accuracy and clinical applicability.
Conclusions:
- PDOs are a key tool in functional precision oncology, bridging the gap between molecular profiling and therapeutic decision-making.
- Integration of PDOs with advanced technologies is redefining their clinical utility for dynamic, functionally guided treatment strategies.
- PDOs represent a promising component of next-generation precision oncology for improved patient stratification and outcomes.

