Literature DB >> 9054405

The globin-based free radical of ferryl hemoglobin is detected in normal human blood.

D A Svistunenko1, R P Patel, S V Voloshchenko, M T Wilson.   

Abstract

Normal human venous blood was studied by electron paramagnetic resonance (EPR) spectroscopy at -196 degrees C. The EPR signal of free radicals in frozen blood is shown to have the same radiospectroscopic parameters and properties as the signal of the globin based free radical, .Hb(Fe(IV)=O), formed in the reaction of purified methemoglobin (metHb) with H2O2 and therefore has been assigned as such. The globin-based radicals and metHb exhibited significant variation (fluctuations) in different frozen samples taken from the same liquid blood sample. In any given sample a high concentration of free radicals was associated with a low concentration of metHb and vice versa, i.e. the fluctuations were always of opposite sense. No such fluctuations were observed in the concentration of two other paramagnetic components of blood, transferrin and ceruloplasmin. The time course of free radical formation and decay upon the addition of H2O2 to purified metHb was studied at three different molar ratios H2O2/metHb. This kinetic study together with the results of an annealing experiment allow us to propose a mechanism for the formation and decay of the globin-based radical in blood. Within this mechanism, the source of H2O2 in blood is considered to be dismutation of O-2 radicals produced via autoxidation of Hb. We postulate that the dismutation is intensified on the phase separation surfaces during cooling and freezing of a blood sample. The fluctuations are explained within this hypothesis.

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Year:  1997        PMID: 9054405     DOI: 10.1074/jbc.272.11.7114

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  20 in total

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2.  Red cells, hemoglobin, heme, iron, and atherogenesis.

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Review 3.  Exercise-induced oxidative stress:myths, realities and physiological relevance.

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4.  The pH dependence of naturally occurring low-spin forms of methaemoglobin and metmyoglobin: an EPR study.

Authors:  D A Svistunenko; M A Sharpe; P Nicholls; C Blenkinsop; N A Davies; J Dunne; M T Wilson; C E Cooper
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5.  Ascorbate removes key precursors to oxidative damage by cell-free haemoglobin in vitro and in vivo.

Authors:  Jacqueline Dunne; Alexis Caron; Patrick Menu; Abdu I Alayash; Paul W Buehler; Michael T Wilson; Radu Silaghi-Dumitrescu; Beatrice Faivre; Chris E Cooper
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6.  Oxidized hemoglobin is an endogenous proinflammatory agonist that targets vascular endothelial cells.

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7.  α-Hemoglobin stabilizing protein (AHSP) markedly decreases the redox potential and reactivity of α-subunits of human HbA with hydrogen peroxide.

Authors:  Todd L Mollan; Sambuddha Banerjee; Gang Wu; Claire J Parker Siburt; Ah-Lim Tsai; John S Olson; Mitchell J Weiss; Alvin L Crumbliss; Abdu I Alayash
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8.  Tyrosine residues as redox cofactors in human hemoglobin: implications for engineering nontoxic blood substitutes.

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Review 9.  Natural history of the bruise: formation, elimination, and biological effects of oxidized hemoglobin.

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10.  Atherogenesis may involve the prooxidant and proinflammatory effects of ferryl hemoglobin.

Authors:  László Potor; Emese Bányai; Gergely Becs; Miguel P Soares; György Balla; József Balla; Viktória Jeney
Journal:  Oxid Med Cell Longev       Date:  2013-05-15       Impact factor: 6.543

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