Literature DB >> 29605886

Reductive nitrosylation of ferric human hemoglobin bound to human haptoglobin 1-1 and 2-2.

Paolo Ascenzi1, Giovanna De Simone2, Fabio Polticelli2,3, Magda Gioia4,5, Massimo Coletta4,5.   

Abstract

Haptoglobin (Hp) sequesters hemoglobin (Hb) preventing the Hb-based damage occurring upon its physiological release into plasma. Here, reductive nitrosylation of ferric human hemoglobin [Hb(III)] bound to human haptoglobin (Hp) 1-1 and 2-2 [Hp1-1:Hb(III) and Hp2-2:Hb(III), respectively] has been investigated between pH 7.5 and 9.5, at T=20.0 °C. Over the whole pH range explored, only one process is detected reflecting NO binding to Hp1-1:Hb(III) and Hp2-2:Hb(III). Values of the pseudo-first-order rate constant for Hp1-1:Hb(III) and Hp2-2:Hb(III) nitrosylation (k) do not depend linearly on the ligand concentration but tend to level off. The conversion of Hp1-1:Hb(III)-NO to Hp1-1:Hb(II)-NO and of Hp2-2:Hb(III)-NO to Hp2-2:Hb(II)-NO is limited by the OH-- and H2O-based catalysis. In fact, bimolecular NO binding to Hp1-1:Hb(III), Hp2-2:Hb(III), Hp1-1:Hb(II), and Hp2-2:Hb(II) proceeds very rapidly. The analysis of data allowed to determine the values of the dissociation equilibrium constant for Hp1-1:Hb(III) and Hp2-2:Hb(III) nitrosylation [K = (1.2 ± 0.1) × 10-4 M], which is pH-independent, and of the first-order rate constant for Hp1-1:Hb(III) and Hp2-2:Hb(III) conversion to Hp1-1:Hb(II)-NO and Hp2-2:Hb(II)-NO, respectively (k'). From the dependence of k' on [OH-], values of hOH- [(4.9 ± 0.6) × 103 M-1 s-1 and (6.79 ± 0.7) × 103 M-1 s-1, respectively] and of [Formula: see text] [(2.6 ± 0.3) × 10-3 s-1] were determined. Values of kinetic and thermodynamic parameters for Hp1-1:Hb(III) and Hp2-2:Hb(III) reductive nitrosylation match well with those of the Hb R-state, which is typical of the αβ dimers of Hb bound to Hp.

Entities:  

Keywords:  Ferric human hemoglobin; Haptoglobin1-1:hemoglobin complex; Haptoglobin2-2:hemoglobin complex; Human haptoglobin 1-1; Human haptoglobin 2-2; Kinetics; Reductive nitrosylation

Mesh:

Substances:

Year:  2018        PMID: 29605886     DOI: 10.1007/s00775-018-1551-y

Source DB:  PubMed          Journal:  J Biol Inorg Chem        ISSN: 0949-8257            Impact factor:   3.358


  41 in total

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Review 2.  Regulation of oxygen affinity of hemoglobin: influence of structure of the globin on the heme iron.

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5.  Cooperativity in the dissociation of nitric oxide from hemoglobin.

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9.  Ferrous Campylobacter jejuni truncated hemoglobin P displays an extremely high reactivity for cyanide - a comparative study.

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10.  The redox state of the cell regulates the ligand binding affinity of human neuroglobin and cytoglobin.

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  6 in total

1.  Hydroxylamine-induced oxidation of ferrous nitrobindins.

Authors:  Giovanna De Simone; Grazia R Tundo; Andrea Coletta; Massimo Coletta; Paolo Ascenzi
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2.  Fluoride and azide binding to ferric human hemoglobin:haptoglobin complexes highlights the ligand-dependent inequivalence of the α and β hemoglobin chains.

Authors:  Paolo Ascenzi; Alessandra di Masi; Giovanna De Simone; Magda Gioia; Massimo Coletta
Journal:  J Biol Inorg Chem       Date:  2019-01-31       Impact factor: 3.358

3.  Kinetics of cyanide and carbon monoxide dissociation from ferrous human haptoglobin:hemoglobin(II) complexes.

Authors:  Paolo Ascenzi; Giovanna De Simone; Grazia R Tundo; Massimo Coletta
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4.  Oxygen dissociation from ferrous oxygenated human hemoglobin:haptoglobin complexes confirms that in the R-state α and β chains are functionally heterogeneous.

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5.  NO Scavenging through Reductive Nitrosylation of Ferric Mycobacterium tuberculosis and Homo sapiens Nitrobindins.

Authors:  Giovanna De Simone; Alessandra di Masi; Chiara Ciaccio; Massimo Coletta; Paolo Ascenzi
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6.  Mycobacterial and Human Ferrous Nitrobindins: Spectroscopic and Reactivity Properties.

Authors:  Giovanna De Simone; Alessandra di Masi; Alessandra Pesce; Martino Bolognesi; Chiara Ciaccio; Lorenzo Tognaccini; Giulietta Smulevich; Stefania Abbruzzetti; Cristiano Viappiani; Stefano Bruno; Sara Della Monaca; Donatella Pietraforte; Paola Fattibene; Massimo Coletta; Paolo Ascenzi
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  6 in total

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