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1.
Antioxidants (Basel) ; 11(10)2022 Oct 11.
Article in English | MEDLINE | ID: mdl-36290730

ABSTRACT

Donors of nitroxyl and nitroxyl anion (HNO/NO-) are considered to be promising pharmacological treatments with a wide range of applications. Remarkable chemical properties allow nitroxyl to function as a classic antioxidant. We assume that HNO/NO- can level down the non-enzymatic glycation of biomolecules. Since erythrocyte hemoglobin (Hb) is highly susceptible to non-enzymatic glycation, we studied the effect of a nitroxyl donor, Angeli's salt, on Hb modification with methylglyoxal (MG) and organic peroxide-tert-butyl hydroperoxide (t-BOOH). Nitroxyl dose-dependently decreased the amount of protein carbonyls and advanced glycation end products (AGEs) that were formed in the case of Hb incubation with MG. Likewise, nitroxyl effectively protected Hb against oxidative modification with t-BOOH. It slowed down the destruction of heme, formation of carbonyl derivatives and inter-subunit cross-linking. The protective effect of nitroxyl on Hb in this system is primarily associated with nitrosylation of oxidized Hb and reduction of its ferryl form, which lowers the yield of free radical products. We suppose that the dual (antioxidant and antiglycation) effect of nitroxyl makes its application possible as part of an additional treatment strategy for oxidative and carbonyl stress-associated diseases.

2.
Biofactors ; 44(3): 237-244, 2018 May.
Article in English | MEDLINE | ID: mdl-29469215

ABSTRACT

Mitochondria are widely known as a major source of reactive oxygen and nitrogen species for the cardiovascular system. Numerous studies established that superoxide anion radical production by heart mitochondria is only slightly suppressed under conditions of deep hypoxia, but is completely blocked under anoxia. It was found also that dinitrosyl iron complexes (DNIC) compare favourably with other physiologically active derivatives of nitric oxide (NO). DNIC with glutathione effectively scavenge superoxide radicals generated by mitochondria at different partial pressures of oxygen. Under conditions of simulated hypoxia, the synthesis of thiol-containing DNIC takes place in mitochondria and is concomitant with a significant decrease in the concentration of NO metabolites at the reoxygenation step. Free NO required for DNIC synthesis is generated in the reaction of S-nitrosothiols with superoxide or during single-electron oxidation of the nitroxyl radical (HNO) by coenzyme Q. Plausible mechanisms of antiradical effects of DNIC and their protective role in oxidative stress induced by hypoxia/reoxygenation of myocardial tissues are considered. © 2018 BioFactors, 44(3):237-244, 2018.


Subject(s)
Electrons , Iron/metabolism , Mitochondria, Heart/drug effects , Nitrogen Oxides/metabolism , Oxygen/pharmacology , Superoxides/antagonists & inhibitors , Animals , Buffers , Electron Spin Resonance Spectroscopy , Free Radical Scavengers/metabolism , Glutathione/metabolism , Glutathione/pharmacology , Male , Mitochondria, Heart/metabolism , Nitric Oxide/antagonists & inhibitors , Nitric Oxide/metabolism , Oxidation-Reduction , Rats , Rats, Wistar , Solutions , Superoxides/metabolism , Ubiquinone/metabolism
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