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Assessment of the biochemical pathways for acetaminophen toxicity: Implications for its carcinogenic hazard potential
Hartmut Jaeschke1, F Jay Murray2, Andrew D Monnot3
1University of Kansas Medical Center, Department of Pharmacology, Toxicology & Therapeutics, Kansas City, KS, USA.
Abstract:
In 2019 California's Office of Environmental Health Hazard Assessment (OEHHA) initiated a review of the carcinogenic hazard potential of acetaminophen. In parallel with this review, herein we evaluated the mechanistic data related to the steps and timing of cellular events following therapeutic recommended (≤4 g/day) and higher doses of acetaminophen that may cause hepatotoxicity to evaluate whether these changes indicate that acetaminophen is a carcinogenic hazard. At therapeutic recommended doses, acetaminophen forms limited amounts of N-acetyl-p-benzoquinone-imine (NAPQI) without adverse cellular effects. Following overdoses of acetaminophen, there is potential for more extensive formation of NAPQI and depletion of glutathione, which may result in mitochondrial dysfunction and DNA damage, but only at doses that result in cell death - thus making it implausible for acetaminophen to induce the kind of stable, genetic damage in the nucleus indicative of a genotoxic or carcinogenic hazard in humans. The collective data demonstrate a lack of a plausible mechanism related to carcinogenicity and are consistent with rodent cancer bioassays, epidemiological results reviewed in companion manuscripts in this issue, as well as conclusions of multiple international health authorities.
Insights
Acetaminophen (APAP) overdose can cause liver damage via N-acetyl-p-benzoquinone-imine (NAPQI) and glutathione depletion. However, this damage occurs at lethal doses, making APAP implausible as a human carcinogen.
Area of Science:
- Toxicology
- Pharmacology
- Carcinogenesis
Background:
- Acetaminophen (APAP) is a widely used analgesic and antipyretic.
- OEHHA initiated a review of APAP's carcinogenic potential in 2019.
- Hepatotoxicity is a known risk associated with APAP overdose.
Purpose of the Study:
- To evaluate mechanistic data on cellular events following APAP exposure.
- To determine if these events indicate a carcinogenic hazard in humans.
- To assess the plausibility of APAP inducing stable genetic damage.
Main Methods:
- Review of mechanistic data on cellular events after APAP exposure.
- Analysis of dose-dependent formation of N-acetyl-p-benzoquinone-imine (NAPQI).
- Evaluation of glutathione depletion, mitochondrial dysfunction, and DNA damage.
Main Results:
- Therapeutic APAP doses form limited NAPQI without adverse effects.
- High APAP doses cause NAPQI formation and glutathione depletion.
- Cellular damage, including DNA damage, occurs only at lethal doses, preventing stable genetic mutations.
Conclusions:
- Lack of a plausible mechanism for APAP carcinogenicity in humans.
- Findings align with rodent bioassays and epidemiological data.
- Consistent with conclusions from international health authorities regarding APAP's safety profile.
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