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Updated: Jan 4, 2026

Author Spotlight: Investigating Liver Cancer Pathogenesis Using Patient-Derived Organoids
Published on: August 18, 2023
Development of organoid-based drug metabolism model
Enoch Park1, Han Kyung Kim1, JooHyun Jee1
1Department of Microbiology and CHA Organoid Research Center, School of Medicine, CHA University, South Korea.
Abstract:
Cytochrome P450 (CYP) gene superfamily catalyzes oxidative metabolism of a wide variety of drugs, carcinogens, and endogenous biomolecules in the liver and intestinal organs. In vitro assay platforms such as primary hepatocyte and immortalized liver-derived cell lines have been developed to evaluate drug effects. However, several limitations have been suggested regarding discrepancies between in vitro and in vivo assays. In this study, we aimed to investigate drug metabolism and toxicity based on mouse small intestinal and liver organoids derived from resident stem cells. At first, expressions and activities of CYP subfamilies (CYPs) in intestinal and liver organoids were investigated. Organoids treated with three CYPs-inducers dexamethasone (Dex), β-naphthoflavone (BNF), and 1,4-bis-2-(3, 5-dichloropyridyloxy)-benzene (TCPOBOP) were evaluated for CYPs activities. The CYPs-induced intestinal and liver organoids were confirmed to digest more docetaxel, as colon cancer cell-line survived more in CYPs-induced organoid's medium than in non-induced organoid's medium. Then, the activity of docetaxel in a co-culture platform of mouse liver organoids and human pancreatic tumoroids was measured. We obtained significant statistical values on CYPs-induced metabolic activities: cell survival rates of pancreatic tumoroids co-cultured with docetaxel-treated undifferentiated, differentiated, and CYPs-induced differentiated organoids were 66.05 ± 2.14%, 89.20 ± 2.67%, and 101.90 ± 0.94%, respectively. To sum up, gene expression modification and drug metabolism evaluation were able to be done with organoids as done with tissues. In vivo-like in vitro investigation on drug toxicity may potentially be done with organoids as a stepping bridge to the clinical trial.
Insights
Mouse organoids derived from stem cells effectively model drug metabolism and toxicity. This in vitro system, using liver and intestinal organoids, shows promise for predicting drug efficacy and reducing discrepancies between lab and clinical trials.
Area of Science:
- Biotechnology and Pharmaceutical Sciences
- Drug Metabolism and Pharmacokinetics
- Organoid Technology
Background:
- Cytochrome P450 (CYP) enzymes are crucial for drug metabolism in the liver and intestines.
- Current in vitro models (hepatocytes, cell lines) show limitations in predicting in vivo drug responses.
- Discrepancies between in vitro and in vivo drug assays necessitate improved experimental platforms.
Purpose of the Study:
- To investigate drug metabolism and toxicity using mouse small intestinal and liver organoids.
- To evaluate the expression and activity of CYP subfamilies in organoids.
- To assess the potential of organoids as an in vivo-like in vitro model for drug evaluation.
Main Methods:
- Generation of mouse small intestinal and liver organoids from resident stem cells.
- Treatment of organoids with CYP inducers (dexamethasone, β-naphthoflavone, TCPOBOP) to assess CYP activity.
- Evaluation of docetaxel metabolism and toxicity in organoid monocultures and co-cultures with human pancreatic tumoroids.
Main Results:
- CYP expression and activity were confirmed in both intestinal and liver organoids.
- CYP-induced organoids demonstrated enhanced docetaxel metabolism, impacting cancer cell survival.
- Co-culture of liver organoids with pancreatic tumoroids showed significant CYP-induced metabolic activity influencing tumoroid survival rates.
Conclusions:
- Mouse organoids accurately reflect gene expression modification and drug metabolism similar to tissue-based assays.
- Organoids provide a robust in vitro platform for evaluating drug toxicity and efficacy.
- Organoid technology serves as a valuable bridge between preclinical research and clinical trials for drug development.

