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Mechanism of arylating quinone toxicity involving Michael adduct formation and induction of endoplasmic reticulum stress

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Quinones permeate our biotic environment, contributing to both homeostasis and cytotoxicity. All quinones generate reactive oxygen species through redox cycling, while partially substituted quinones also undergo arylation (Michael adduct formation) yielding covalent bonds with nucleophiles such as cysteinyl thiols. In contrast to reactive oxygen species, the role of arylation in quinone cytotoxicity is not well understood. We found that the arylating quinones, including unsubstituted 1,4-benzoquinone (1,4-BzQ) and partially substituted vitamin E congener γ-tocopherol quinone (γ-TQ), were cytotoxic, with γ-TQ > 1,4-BzQ, whereas the fully substituted nonarylating vitamin E congener α-tocopherol quinone was not. In vitro , both arylating quinones formed Michael adducts with the thiol nucleophile N- acetylcysteine (NAC) at rates where 1,4-BzQ > γ-TQ. In cultured cells, concurrent addition of NAC eliminated 1,4-BzQ caused toxicity, but preincubation was required for the same NAC detoxification effect on γ-TQ. These data clearly established the role of arylation in quinone toxicity and revealed that arylating quinone structure affects cytotoxicity by governing detoxification through the rate of adduct formation. Furthermore, arylating quinones induced endoplasmic reticulum (ER) stress by activating the pancreatic ER kinase (PERK) signaling pathway including elF2α, ATF4, and C/EBP homologous protein (CHOP). Detoxification by NAC greatly attenuates CHOP induction in arylating quinone-treated cells, suggesting that ER stress is a cellular mechanism for arylating quinone cytotoxicity.
Title: Mechanism of arylating quinone toxicity involving Michael adduct formation and induction of endoplasmic reticulum stress
Description:
Quinones permeate our biotic environment, contributing to both homeostasis and cytotoxicity.
All quinones generate reactive oxygen species through redox cycling, while partially substituted quinones also undergo arylation (Michael adduct formation) yielding covalent bonds with nucleophiles such as cysteinyl thiols.
In contrast to reactive oxygen species, the role of arylation in quinone cytotoxicity is not well understood.
We found that the arylating quinones, including unsubstituted 1,4-benzoquinone (1,4-BzQ) and partially substituted vitamin E congener γ-tocopherol quinone (γ-TQ), were cytotoxic, with γ-TQ > 1,4-BzQ, whereas the fully substituted nonarylating vitamin E congener α-tocopherol quinone was not.
In vitro , both arylating quinones formed Michael adducts with the thiol nucleophile N- acetylcysteine (NAC) at rates where 1,4-BzQ > γ-TQ.
In cultured cells, concurrent addition of NAC eliminated 1,4-BzQ caused toxicity, but preincubation was required for the same NAC detoxification effect on γ-TQ.
These data clearly established the role of arylation in quinone toxicity and revealed that arylating quinone structure affects cytotoxicity by governing detoxification through the rate of adduct formation.
Furthermore, arylating quinones induced endoplasmic reticulum (ER) stress by activating the pancreatic ER kinase (PERK) signaling pathway including elF2α, ATF4, and C/EBP homologous protein (CHOP).
Detoxification by NAC greatly attenuates CHOP induction in arylating quinone-treated cells, suggesting that ER stress is a cellular mechanism for arylating quinone cytotoxicity.

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