Related Experiment Video
Updated: Mar 22, 2026

Generation of a Rat Model of Acute Liver Failure by Combining 70% Partial Hepatectomy and Acetaminophen
Published on: November 27, 2019
Reducing Hepatocyte Injury and Necrosis in Response to Paracetamol Using Noncoding RNAs
Dagmara Szkolnicka1, Baltasar Lucendo-Villarin1, Joanna K Moore1
1Medical Research Council Centre for Regenerative Medicine, University of Edinburgh, Edinburgh, United Kingdom.
Unlabelled:
The liver performs multiple functions within the human body. It is composed of numerous cell types, which play important roles in organ physiology. Our study centers on the major metabolic cell type of the liver, the hepatocyte, and its susceptibility to damage during drug overdose. In these studies, hepatocytes were generated from a renewable and genetically defined resource. In vitro-derived hepatocytes were extensively profiled and exposed to varying levels of paracetamol and plasma isolated from liver-failure patients, with a view to identifying noncoding microRNAs that could reduce drug- or serum-induced hepatotoxicity. We identified a novel anti-microRNA, which reduced paracetamol-induced hepatotoxicity and glutathione depletion. Additionally, we identified a prosurvival role for anti-microRNA-324 following exposure to plasma collected from liver failure patients. We believe that these studies represent an important advance for the field, demonstrating the power of stem cell-derived systems to model human biology "in a dish" and identify novel noncoding microRNAs, which could be translated to the clinic in the future.
Significance:
The liver performs vital functions within the human body and is composed of numerous cell types. The major metabolic cell type of the liver, the hepatocyte, is susceptible to damage during drug overdose. In these studies, hepatocytes were generated from a renewable resource and exposed to varying levels of paracetamol, with a view to identifying interventions that could reduce or attenuate drug-induced liver toxicity. A novel noncoding RNA that reduced paracetamol-induced hepatocyte toxicity was identified. These findings may represent an important advance for the field.
Insights
Researchers identified a novel microRNA that reduces liver damage from paracetamol overdose. This discovery offers potential new treatments for drug-induced liver toxicity.
Area of Science:
- Hepatology and stem cell biology.
- Drug-induced liver injury (DILI) mechanisms.
- Noncoding RNA therapeutics.
Background:
- The liver, crucial for metabolism, contains hepatocytes susceptible to drug overdose damage.
- Drug overdose, particularly paracetamol, is a leading cause of acute liver failure.
- Identifying protective agents against hepatotoxicity is a significant clinical need.
Purpose of the Study:
- To identify novel noncoding microRNAs capable of reducing drug- or serum-induced hepatotoxicity.
- To investigate the therapeutic potential of these microRNAs in liver disease models.
- To utilize stem cell-derived hepatocytes for modeling human liver biology and drug toxicity.
Main Methods:
- Generation of hepatocytes from a renewable, genetically defined stem cell resource.
- In vitro exposure of derived hepatocytes to paracetamol and patient-derived liver failure plasma.
- Profiling of noncoding microRNAs to identify those modulating hepatotoxicity.
- Assessment of paracetamol-induced hepatotoxicity and glutathione depletion.
Main Results:
- A novel anti-microRNA was identified that significantly reduced paracetamol-induced hepatotoxicity and glutathione depletion.
- Anti-microRNA-324 demonstrated a prosurvival role when hepatocytes were exposed to liver failure patient plasma.
- Stem cell-derived hepatocytes effectively modeled human liver biology and drug-induced toxicity in vitro.
Conclusions:
- Novel noncoding RNAs were identified with the potential to mitigate drug-induced liver toxicity.
- Stem cell-derived liver models provide a powerful platform for discovering new therapeutic targets.
- These findings represent a significant advance with potential for clinical translation in treating liver injury.
Related Concept Videos
Cell Specific Gene Expression
Experimental RNAi
Liver Regeneration
Cells of Liver
The liver comprises four major types of cells— hepatocytes, stellate, Kupffer, and sinusoidal endothelial cells. The hepatocytes are...

