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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.
Abstract:
A tyrosinase-directed therapeutic approach for malignant melanoma therapy uses the depigmenting phenolic agents such as 4-hydroxyanisole (4-HA) to form cytotoxic o-quinones. However, renal and hepatic toxicity was reported as side effects in a recent 4-HA clinical trial. In search of novel therapeutics, the cytotoxicity of the isomers 4-HA, 3-HA and 2-HA were investigated. In the following, the order of the HAs induced hepatotoxicity in mice, as measured by increased in vivo plasma transaminase activity, or in isolated rat hepatocytes, as measured by trypan blue exclusion, was 3-HA > 2-HA > 4-HA. Hepatocyte GSH depletion preceded HA induced cytotoxicity and a 4-MC-SG conjugate was identified by LC/MS/MS mass spectrometry analysis when 3-HA was incubated with NADPH/microsomes/GSH. 3-HA induced hepatocyte GSH depletion or GSH depletion when 3-HA was incubated with NADPH/microsomes was prevented by CYP 2E1 inhibitors. Dicumarol (an NAD(P)H: quinone oxidoreductase inhibitor) potentiated 3-HA- or 4-methoxycatechol (4-MC) induced toxicity whereas sorbitol (an NADH generating nutrient) greatly prevented cytotoxicity indicating a quinone-mediated cytotoxic mechanism. Ethylendiamine (an o-quinone trap) largely prevented 3-HA and 4-MC-induced cytotoxicity indicating that o-quinone was involved in cytotoxicity. Dithiothreitol (DTT) greatly reduced 3-HA and 4-MC induced toxicity. The ferric chelator deferoxamine slightly decreased 3-HA and 4-MC induced cytotoxicity whereas the antioxidants pyrogallol or TEMPOL greatly prevented the toxicity suggesting that oxidative stress contributed to 3-HA induced cytotoxicity. In summary, ring hydroxylation but not O-demethylation/epoxidation seems to be the bioactivation pathway for 3-HA in rat liver. The cytotoxic mechanism for 3-HA and its metabolite 4-MC likely consists cellular protein alkylation and oxidative stress. These results suggest that 3-HA is not suitable for treatment of melanoma.
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.