4.7 Article

Ergothioneine stands out from hercynine in the reaction with singlet oxygen: Resistance to glutathione and TRIS in the generation of specific products indicates high reactivity

Journal

FREE RADICAL BIOLOGY AND MEDICINE
Volume 113, Issue -, Pages 385-394

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.freeradbiomed.2017.10.372

Keywords

Ergothioneine; Singlet oxygen; Glutathione; LC-MS; Antioxidant; Imidazole; Hydroperoxide

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The candidate vitamin ergothioneine (ET), an imidazole-2-thione derivative of histidine betaine, is generally considered an antioxidant. However, the precise physiological role of ET is still unresolved. Here, we investigated in vitro the hypothesis that ET serves specifically to eradicate noxious singlet oxygen (O-1(2)). Pure O-1(2) was generated by thermolysis at 37 degrees C of N, N'-di(2,3-dihydroxypropyl)-1,4-naphthalenedipropanamide 1,4-endoperoxide (DHPNO2). Assays of DHPNO2 with ET or hercynine (= ET minus sulfur) at pH 7.4 were analyzed by LC-MS in full scan mode to detect products. Based on accurate mass and product ion scan data, several products were identified and then quantitated as a function of time by selected reaction monitoring. All products of hercynine contained, after a [4 + 2] cycloaddition of O-1(2), a carbonyl at position 2 of the imidazole ring. By contrast, because of the doubly bonded sulfur, we infer from the products of ET as the initial intermediates a 4,5-dioxetane (after [2 + 2] cycloaddition) and hydroperoxides at position 4 and 5 (after Schenck ene reactions). The generation of single products from ET, but not from hercynine, was fully resistant to a large excess of tris (hydroxymethyl) aminomethane (TRIS) or glutathione (GSH). This suggests that O-1(2) markedly favors ET over GSH (at least 50-fold) and TRIS (at least 250-fold) for the initial reaction. Loss of ET was almost abolished in 5 mM GSH, but not in 25 mM TRIS. Regeneration of ET seems feasible, since some ET products - by contrast to hercynine products - decomposed easily in the MS collision cell to become aromatic again.

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