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Updated: Nov 20, 2025

Isolation and Characterization of Patient-derived Pancreatic Ductal Adenocarcinoma Organoid Models
Published on: January 14, 2020
Organoid technology for personalized pancreatic cancer therapy
Axel Bengtsson1, Roland Andersson1, Jonas Rahm1
1Department of Surgery, Clinical Sciences Lund, Skåne University Hospital, Lund University, Skåne University Hospital, Lund, SE-221 85, Lund, Sweden.
Background:
Pancreatic ductal adenocarcinoma has the lowest survival rate among all major cancers and is the third leading cause of cancer-related mortality. The stagnant survival statistics and dismal response rates to current therapeutics highlight the need for more efficient preclinical models. Patient-derived organoids (PDOs) offer new possibilities as powerful preclinical models able to account for interpatient variability. Organoid development can be divided into four different key phases: establishment, propagation, drug screening and response prediction. Establishment entails tailored tissue extraction and growth protocols, propagation requires consistent multiplication and passaging, while drug screening and response prediction will benefit from shorter and more precise assays, and clear decision-making tools.
Conclusions:
This review attempts to outline the most important challenges that remain in exploiting organoid platforms for drug discovery and clinical applications. Some of these challenges may be overcome by novel methods that are under investigation, such as 3D bioprinting systems, microfluidic systems, optical metabolic imaging and liquid handling robotics. We also propose an optimized organoid workflow inspired by all technical solutions we have presented.
Insights
Patient-derived organoids (PDOs) are promising preclinical models for pancreatic cancer, addressing low survival rates. Optimizing organoid workflows can improve drug discovery and clinical applications.
Area of Science:
- Oncology
- Biotechnology
- Cancer Research
Background:
- Pancreatic ductal adenocarcinoma (PDAC) has a low survival rate and high mortality.
- Current therapeutics show limited efficacy, necessitating improved preclinical models.
- Patient-derived organoids (PDOs) offer a solution by capturing interpatient variability.
Purpose of the Study:
- To review challenges in organoid platform utilization for drug discovery and clinical applications.
- To propose an optimized organoid workflow incorporating novel technical solutions.
Main Methods:
- Organoid development phases: establishment, propagation, drug screening, and response prediction.
- Exploration of novel methods: 3D bioprinting, microfluidics, optical metabolic imaging, and robotics.
Main Results:
- Identified key challenges in establishing, propagating, and utilizing PDOs for drug screening.
- Highlighted the potential of emerging technologies to enhance organoid-based research.
Conclusions:
- Novel technologies can address current organoid platform limitations.
- An optimized organoid workflow is proposed to enhance drug discovery and clinical applications for PDAC.
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