Related Experiment Video
Updated: Mar 12, 2026

Isolation of Primary Mouse Hepatocytes for Nascent Protein Synthesis Analysis by Non-radioactive L-azidohomoalanine Labeling Method
Published on: October 23, 2018
AMPK Activation Prevents and Reverses Drug-Induced Mitochondrial and Hepatocyte Injury by Promoting Mitochondrial
Sun Woo Sophie Kang1, Ghada Haydar1, Caitlin Taniane1
1Faculty of Pharmacy, The University of Sydney, Sydney, NSW, Australia.
Abstract:
Mitochondrial damage is the major factor underlying drug-induced liver disease but whether conditions that thwart mitochondrial injury can prevent or reverse drug-induced liver damage is unclear. A key molecule regulating mitochondria quality control is AMP activated kinase (AMPK). When activated, AMPK causes mitochondria to elongate/fuse and proliferate, with mitochondria now producing more ATP and less reactive oxygen species. Autophagy is also triggered, a process capable of removing damaged/defective mitochondria. To explore whether AMPK activation could potentially prevent or reverse the effects of drug-induced mitochondrial and hepatocellular damage, we added an AMPK activator to collagen sandwich cultures of rat and human hepatocytes exposed to the hepatotoxic drugs, acetaminophen or diclofenac. In the absence of AMPK activation, the drugs caused hepatocytes to lose polarized morphology and have significantly decreased ATP levels and viability. At the subcellular level, mitochondria underwent fragmentation and had decreased membrane potential due to decreased expression of the mitochondrial fusion proteins Mfn1, 2 and/or Opa1. Adding AICAR, a specific AMPK activator, at the time of drug exposure prevented and reversed these effects. The mitochondria became highly fused and ATP production increased, and hepatocytes maintained polarized morphology. In exploring the mechanism responsible for this preventive and reversal effect, we found that AMPK activation prevented drug-mediated decreases in Mfn1, 2 and Opa1. AMPK activation also stimulated autophagy/mitophagy, most significantly in acetaminophen-treated cells. These results suggest that activation of AMPK prevents/reverses drug-induced mitochondrial and hepatocellular damage through regulation of mitochondrial fusion and autophagy, making it a potentially valuable approach for treatment of drug-induced liver injury.
Insights
AMP-activated kinase (AMPK) activation prevents and reverses drug-induced liver injury by enhancing mitochondrial fusion and autophagy. This approach shows promise for treating drug-induced liver damage.
Area of Science:
- Hepatology
- Mitochondrial Biology
- Pharmacology
Background:
- Mitochondrial damage is central to drug-induced liver disease (DILD).
- The role of mitochondrial quality control pathways in preventing or reversing DILD remains unclear.
- AMP-activated kinase (AMPK) regulates mitochondrial health and cellular stress responses.
Purpose of the Study:
- To investigate whether AMPK activation can prevent or reverse drug-induced mitochondrial and hepatocellular damage.
- To explore the mechanisms by which AMPK influences mitochondrial dynamics and cell viability.
Main Methods:
- Primary rat and human hepatocytes were cultured and exposed to hepatotoxic drugs (acetaminophen, diclofenac).
- An AMPK activator (AICAR) was administered concurrently with drug exposure.
- Assessed hepatocyte morphology, ATP levels, viability, mitochondrial structure, membrane potential, fusion protein expression (Mfn1, 2, Opa1), and autophagy/mitophagy.
Main Results:
- Drug exposure without AMPK activation led to hepatocyte damage, decreased ATP, and mitochondrial fragmentation.
- AICAR treatment prevented and reversed these drug-induced effects, preserving cell viability and morphology.
- AMPK activation maintained mitochondrial fusion protein expression and stimulated autophagy/mitophagy.
Conclusions:
- AMPK activation protects hepatocytes from drug-induced damage by promoting mitochondrial fusion and autophagy.
- This suggests that targeting AMPK is a potential therapeutic strategy for managing DILD.
More Related Videos
07:14A Flow Cytometry-based Assay for Measuring Mitochondrial Membrane Potential in Cardiac Myocytes After Hypoxia/Reoxygenation
Published on: July 13, 2018
08:15Exploring Mitochondrial Energy Metabolism of Single 3D Microtissue Spheroids Using Extracellular Flux Analysis
Published on: February 3, 2022
Related Concept Videos
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...
cAMP-dependent Protein Kinase Pathways
Bioactivation and Tissue Toxicity
PI3K/mTOR/AKT Signaling Pathway
Drug Biotransformation: Overview
Drug Biotransformation: Overview