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Published on: May 26, 2023
Drug-induced oxidative stress actively prevents caspase activation and hepatocyte apoptosis
Rebekka Lambrecht1,2, Jasmin Jansen3,4, Franziska Rudolf1,5
1Biochemical Pharmacology, Department of Biology, University of Konstanz, Konstanz, Germany.
Abstract:
Cell death is a fundamental process in health and disease. Emerging research shows the existence of numerous distinct cell death modalities with similar and intertwined signaling pathways, but resulting in different cellular outcomes, raising the need to understand the decision-making steps during cell death signaling. Paracetamol (Acetaminophen, APAP)-induced hepatocyte death includes several apoptotic processes but eventually is executed by oncotic necrosis without any caspase activation. Here, we studied this paradoxical form of cell death and revealed that APAP not only fails to activate caspases but also strongly impedes their activation upon classical apoptosis induction, thereby shifting apoptosis to necrosis. While APAP intoxication results in massive drop in mitochondrial respiration, low cellular ATP levels could be excluded as an underlying cause of missing apoptosome formation and caspase activation. In contrast, we identified oxidative stress as a key factor in APAP-induced caspase inhibition. Importantly, caspase inhibition and the associated switch from apoptotic to necrotic cell death was reversible through the administration of antioxidants. Thus, exemplified by APAP-induced cell death, our study stresses that cellular redox status is a critical component in the decision-making between apoptotic and necrotic cell death, as it directly affects caspase activity.
Insights
Paracetamol (Acetaminophen, APAP) causes cell death by inhibiting caspases, shifting apoptosis to necrosis. This switch is driven by oxidative stress and can be reversed with antioxidants, highlighting the role of cellular redox status in cell death decisions.
Area of Science:
- Cellular biology
- Biochemistry
- Toxicology
Background:
- Cell death is crucial in health and disease, with diverse modalities.
- Understanding cell death signaling pathways is vital for deciphering cellular outcomes.
- Paracetamol (Acetaminophen, APAP)-induced liver injury involves necrosis without caspase activation.
Purpose of the Study:
- Investigate the paradoxical cell death induced by APAP.
- Determine the mechanisms behind APAP's inhibition of caspase activation.
- Elucidate the role of cellular redox status in APAP-induced cell death.
Main Methods:
- Studied APAP-induced hepatocyte death.
- Assessed caspase activation and apoptosome formation.
- Measured mitochondrial respiration and cellular ATP levels.
- Investigated the impact of oxidative stress and antioxidants.
Main Results:
- APAP inhibits caspase activation, promoting necrosis over apoptosis.
- Reduced mitochondrial respiration and ATP levels were observed but not the cause of caspase inhibition.
- Oxidative stress was identified as a key factor in APAP-induced caspase inhibition.
- Antioxidant administration reversed caspase inhibition and the shift to necrosis.
Conclusions:
- Cellular redox status critically influences the decision between apoptosis and necrosis.
- APAP-induced cell death demonstrates that oxidative stress directly impacts caspase activity.
- Targeting cellular redox balance may offer therapeutic strategies for APAP toxicity.
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