Related Experiment Videos
Acetaminophen toxicity results in site-specific mitochondrial damage in isolated mouse hepatocytes
1Department of Pharmacology, Queen Elizabeth II Medical Centre, University of Western Australia, Nedlands.
Abstract:
Exposure of isolated mouse hepatocytes to a toxic concentration of acetaminophen (5 mM) resulted in damage to the mitochondrial respiratory apparatus. The nature of this damage was investigated by measuring respiration stimulated by site-specific substrates in digitonin-permeabilized hepatocytes after acetaminophen exposure. Respiration stimulated by succinate at energy-coupling site 2 was most sensitive to inhibition and was decreased by 47% after 1 h. Respiration supported by NADH-linked substrates (site 1) was also decreased but to a lesser extent, while there was no decrease in the rate of ascorbate + N,N,N',N'-tetramethyl-p-phenylenediamine (TMPD)-supported respiration (site 3). The loss of mitochondrial respiratory function was accompanied by a decrease in ATP levels and ATP/ADP ratios in the cytosolic compartment and was preceded by a loss of reduced glutathione in both the cytosol and mitochondria. All these effects occurred well before the loss of cell membrane integrity. The putative toxic metabolite of acetaminophen, N-acetyl-p-benzoquinonimine (NAPQI), produced a similar pattern of respiratory dysfunction in isolated hepatic mitochondria. Respiration stimulated by succinate- and NADH-linked substrates was very sensitive to 50 microM NAPQI, while ascorbate + TMPD-supported respiration was unaffected. The interaction between NAPQI and the respiratory chain was further investigated using submitochondrial particles. Succinate dehydrogenase (associated with respiratory complex II) was found to be very sensitive to NAPQI, while NADH dehydrogenase (respiratory complex I) was inhibited to a lesser extent. Our results indicate that a loss of the ability to utilize succinate- and NADH-linked substrates due to attack of the respiratory chain by NAPQI causes a disruption of energy homeostasis in acetaminophen hepatotoxicity.
Insights
Acetaminophen toxicity damages liver cell mitochondria by inhibiting key respiratory enzymes, particularly succinate dehydrogenase. This disruption of cellular energy production occurs before cell death, highlighting a critical mechanism in acetaminophen-induced liver injury.
Area of Science:
- Hepatotoxicity
- Mitochondrial Biology
- Biochemistry
Background:
- Acetaminophen overdose is a leading cause of acute liver failure.
- The precise mechanisms of acetaminophen-induced liver injury, particularly mitochondrial dysfunction, require further elucidation.
- Understanding these mechanisms is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the impact of acetaminophen on mitochondrial respiration in isolated hepatocytes.
- To identify specific sites of damage within the mitochondrial respiratory chain.
- To explore the role of the toxic metabolite N-acetyl-p-benzoquinonimine (NAPQI) in causing respiratory dysfunction.
Main Methods:
- Isolated mouse hepatocytes were exposed to acetaminophen (5 mM).
- Mitochondrial respiration was measured using digitonin-permeabilized hepatocytes and site-specific substrates.
- The effects of NAPQI on isolated mitochondria and submitochondrial particles were assessed.
Main Results:
- Acetaminophen significantly inhibited respiration supported by succinate (site 2) and NADH (site 1), but not ascorbate + TMPD (site 3).
- NAPQI mimicked this pattern, strongly inhibiting succinate dehydrogenase (complex II) and, to a lesser extent, NADH dehydrogenase (complex I).
- Mitochondrial dysfunction, indicated by reduced respiration and ATP levels, preceded cell membrane damage and was associated with glutathione depletion.
Conclusions:
- Acetaminophen-induced hepatotoxicity involves direct damage to the mitochondrial respiratory chain by NAPQI.
- Inhibition of succinate and NADH-linked respiration disrupts cellular energy homeostasis.
- Targeting NAPQI-induced mitochondrial damage may offer therapeutic benefits in acetaminophen poisoning.