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Intracellular signaling mechanisms of acetaminophen-induced liver cell death
Hartmut Jaeschke1, Mary Lynn Bajt
1Liver Research Institute, University of Arizona, College of Medicine, Tucson, Arizona 85737, USA. jaeschke@email.arizona.edu
Abstract:
Acetaminophen hepatotoxicity is the leading cause of drug-induced liver failure. Despite substantial efforts in the past, the mechanisms of acetaminophen-induced liver cell injury are still incompletely understood. Recent advances suggest that reactive metabolite formation, glutathione depletion, and alkylation of proteins, especially mitochondrial proteins, are critical initiating events for the toxicity. Bcl-2 family members Bax and Bid then form pores in the outer mitochondrial membrane and release intermembrane proteins, e.g., apoptosis-inducing factor (AIF) and endonuclease G, which then translocate to the nucleus and initiate chromatin condensation and DNA fragmentation, respectively. Mitochondrial dysfunction, due to covalent binding, leads to formation of reactive oxygen and peroxynitrite, which trigger the membrane permeability transition and the collapse of the mitochondrial membrane potential. In addition to the diminishing capacity to synthesize ATP, endonuclease G and AIF are further released. Endonuclease G, together with an activated nuclear Ca2+,Mg2+-dependent endonuclease, cause DNA degradation, thereby preventing cell recovery and regeneration. Disruption of the Ca2+ homeostasis also leads to activation of intracellular proteases, e.g., calpains, which can proteolytically cleave structural proteins. Thus, multiple events including massive mitochondrial dysfunction and ATP depletion, extensive DNA fragmentation, and modification of intracellular proteins contribute to the development of oncotic necrotic cell death in the liver after acetaminophen overdose. Based on the recognition of the temporal sequence and interdependency of these mechanisms, it appears most promising to therapeutically target either the initiating event (metabolic activation) or the central propagating event (mitochondrial dysfunction and peroxynitrite formation) to prevent acetaminophen-induced liver cell death.
Insights
Acetaminophen overdose causes liver failure through mitochondrial damage and DNA fragmentation. Targeting initial metabolic activation or mitochondrial dysfunction may prevent liver cell death.
Area of Science:
- Hepatology
- Toxicology
- Molecular Biology
Background:
- Acetaminophen hepatotoxicity is a primary cause of drug-induced liver failure.
- Mechanisms underlying acetaminophen-induced liver injury remain incompletely understood.
- Reactive metabolite formation and protein alkylation are implicated in toxicity.
Purpose of the Study:
- To elucidate the molecular mechanisms of acetaminophen-induced liver cell injury.
- To identify critical initiating and propagating events in acetaminophen toxicity.
- To inform potential therapeutic targets for acetaminophen overdose.
Main Methods:
- Investigated the role of reactive metabolites and glutathione depletion.
- Examined the involvement of Bcl-2 family proteins (Bax, Bid) in mitochondrial outer membrane permeabilization.
- Assessed the release of intermembrane proteins (AIF, endonuclease G) and their nuclear translocation.
- Analyzed mitochondrial dysfunction, reactive oxygen species, and peroxynitrite formation.
- Studied disruption of calcium homeostasis and activation of proteases (calpains).
Main Results:
- Reactive metabolite formation, glutathione depletion, and protein alkylation initiate liver injury.
- Bcl-2 family proteins mediate mitochondrial outer membrane pore formation.
- Mitochondrial dysfunction leads to ATP depletion and release of apoptosis-inducing factor (AIF) and endonuclease G.
- Nuclear translocation of AIF and endonuclease G induces DNA fragmentation.
- Disrupted calcium homeostasis activates proteases, contributing to cell death.
- Acetaminophen overdose results in oncotic necrotic cell death via multiple pathways.
Conclusions:
- Therapeutic strategies targeting metabolic activation or mitochondrial dysfunction/peroxynitrite formation show promise.
- Understanding the temporal sequence of events is crucial for effective intervention.
- Preventing acetaminophen-induced liver cell death requires addressing key molecular pathways.
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