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Metabolic activation of 3-hydroxyanisole by isolated rat hepatocytes

Majid Y Moridani1, Sophia S Cheon, Sumsullah Khan

  • 1Faculty of Pharmacy, University of Toronto, 19 Russell Street, Toronto, Ont, Canada M5S 2S2.

Insights

Investigating hydroxyanisole (HA) isomers for melanoma therapy revealed that 3-HA is highly hepatotoxic, unlike 4-HA. This toxicity involves oxidative stress and protein alkylation, making 3-HA unsuitable for melanoma treatment.

Area of Science:

  • Pharmacology and Toxicology
  • Biochemistry
  • Cancer Therapeutics

Background:

  • Tyrosinase-directed therapy for melanoma uses depigmenting agents like 4-hydroxyanisole (4-HA).
  • 4-HA has shown promise but also reported renal and hepatic toxicity in clinical trials.
  • Novel therapeutics are needed, prompting investigation into HA isomers' cytotoxicity.

Purpose of the Study:

  • To investigate and compare the cytotoxicity of 4-hydroxyanisole (4-HA) isomers: 3-HA, 2-HA, and 4-HA.
  • To elucidate the underlying mechanisms of HA-induced hepatotoxicity.
  • To assess the potential of 3-HA as a melanoma therapeutic agent.

Main Methods:

  • Assessed in vivo hepatotoxicity in mice via plasma transaminase activity.
  • Evaluated cytotoxicity in isolated rat hepatocytes using trypan blue exclusion.
  • Identified metabolites using LC/MS/MS and investigated mechanisms with enzyme inhibitors, substrate modulators, and chemical probes.

Main Results:

  • Hepatotoxicity order was determined as 3-HA > 2-HA > 4-HA.
  • Hepatocyte glutathione (GSH) depletion preceded cytotoxicity, and a 4-methoxycatechol-glutathione (4-MC-SG) conjugate was identified.
  • CYP 2E1 inhibition prevented GSH depletion; NAD(P)H: quinone oxidoreductase inhibition potentiated toxicity, while NADH generation prevented it.
  • o-quinone trapping and DTT significantly reduced toxicity, indicating o-quinone involvement.
  • Antioxidants greatly prevented toxicity, suggesting oxidative stress contributes to 3-HA's mechanism.

Conclusions:

  • Ring hydroxylation, not O-demethylation/epoxidation, is the likely bioactivation pathway for 3-HA in rat liver.
  • The cytotoxic mechanism of 3-HA and its metabolite 4-MC involves cellular protein alkylation and oxidative stress.
  • 3-HA is not suitable for melanoma treatment due to its significant hepatotoxicity.

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