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Updated: Feb 13, 2026

Generation of a Rat Model of Acute Liver Failure by Combining 70% Partial Hepatectomy and Acetaminophen
Published on: November 27, 2019
Replicative stress and alterations in cell cycle checkpoint controls following acetaminophen hepatotoxicity restrict
Preeti Viswanathan1, Yogeshwar Sharma2, Priya Gupta2
1Division of Pediatric Gastroenterology and Hepatology, Children's Hospital at Montefiore, Albert Einstein College of Medicine, Bronx, NY, USA.
Objectives:
Acetaminophen hepatotoxicity is a leading cause of hepatic failure with impairments in liver regeneration producing significant mortality. Multiple intracellular events, including oxidative stress, mitochondrial damage, inflammation, etc., signify acetaminophen toxicity, although how these may alter cell cycle controls has been unknown and was studied for its significance in liver regeneration.
Materials And Methods:
Assays were performed in HuH-7 human hepatocellular carcinoma cells, primary human hepatocytes and tissue samples from people with acetaminophen-induced acute liver failure. Cellular oxidative stress, DNA damage and cell proliferation events were investigated by mitochondrial membrane potential assays, flow cytometry, fluorescence staining, comet assays and spotted arrays for protein expression after acetaminophen exposures.
Results:
In experimental groups with acetaminophen toxicity, impaired mitochondrial viability and substantial DNA damage were observed with rapid loss of cells in S and G2/M and cell cycle restrictions or even exit in the remainder. This resulted from altered expression of the DNA damage regulator, ATM and downstream transducers, which imposed G1/S checkpoint arrest, delayed entry into S and restricted G2 transit. Tissues from people with acute liver failure confirmed hepatic DNA damage and cell cycle-related lesions, including restrictions of hepatocytes in aneuploid states. Remarkably, treatment of cells with a cytoprotective cytokine reversed acetaminophen-induced restrictions to restore cycling.
Conclusions:
Cell cycle lesions following mitochondrial and DNA damage led to failure of hepatic regeneration in acetaminophen toxicity but their reversibility offers molecular targets for treating acute liver failure.
Insights
Acetaminophen toxicity causes liver failure by damaging DNA and impairing cell cycle control, hindering liver regeneration. However, a cytoprotective cytokine treatment can reverse these cell cycle lesions, offering potential therapeutic targets for acute liver failure.
Area of Science:
- Hepatology
- Cell Biology
- Toxicology
Background:
- Acetaminophen (APAP) overdose is a primary cause of acute liver failure (ALF) and mortality.
- Impaired liver regeneration significantly contributes to APAP-induced hepatotoxicity.
- The impact of APAP toxicity on cell cycle regulation and liver regeneration remained largely unexplored.
Purpose of the Study:
- To investigate the effects of acetaminophen toxicity on cell cycle control.
- To understand the mechanisms underlying impaired liver regeneration in acetaminophen hepatotoxicity.
- To identify potential therapeutic targets for acute liver failure.
Main Methods:
- Utilized HuH-7 cells, primary human hepatocytes, and human ALF liver tissues.
- Assessed cellular oxidative stress, mitochondrial membrane potential, and DNA damage.
- Analyzed cell proliferation, cell cycle progression (G1/S, G2/M), and protein expression via flow cytometry, comet assays, and spotted arrays.
Main Results:
- Acetaminophen exposure induced mitochondrial dysfunction and significant DNA damage.
- Cells exhibited rapid loss in S and G2/M phases, with cell cycle arrest at G1/S and restricted G2 transit due to ATM pathway alterations.
- Human ALF tissues confirmed DNA damage and cell cycle abnormalities, including aneuploidy; a cytokine treatment restored cell cycling.
Conclusions:
- Acetaminophen-induced mitochondrial and DNA damage cause cell cycle lesions, leading to failed hepatic regeneration.
- The observed reversibility of these cell cycle defects presents promising molecular targets for treating acute liver failure.
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