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PubMed · 13039344

[Hemoglobin synthesis].

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1952-11-15. [Hemoglobin synthesis].. https://pubmed.ncbi.nlm.nih.gov/13039344/

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Kinetics of NO and O2 binding to a maleimide poly(ethylene glycol)-conjugated human haemoglobin.

The hypertensive effect observed with most cell-free haemoglobins has been proposed to result from NO scavenging. However, a newly developed PEG [poly(ethylene glycol)]-conjugated haemoglobin, MalPEG-Hb [maleimide-activated PEG-conjugated haemoglobin], is non-hypertensive with unique physicochemical properties: high O2 affinity, low co-operativity and large molecular radius. It is therefore of interest to compare the ligand-binding properties of MalPEG-Hb with unmodified cell-free HbA (stroma-free human haemoglobin). NO association rates for deoxy and oxyMalPEG-Hb and HbA were found to be identical. These results confirm the lack of correlation between hypertension and NO for a similar modified haemoglobin with high molecular radius and low p50 (pO2 at which haemoglobin is half-saturated with O2) [Rohlfs, Bruner, Chiu, Gonzales, Gonzales, Magde, Magde, Vandegriff and Winslow (1998) J. Biol. Chem. 273, 12128-12134]. The R-state O2 association kinetic constants were also the same for the two haemoglobins. However, even though the p50 of MalPEG-Hb is approx. half of that of HbA, the biphasic O2 dissociation rates measured at relatively high pO2 (150 Torr) were 2-fold higher, giving rise to a 2-fold lower R-state equilibrium association constant for MalPEG-Hb compared with HbA. Thus the O2 affinity of MalPEG-Hb is higher only at pO2 values lower than the intersection point of the O2 equilibrium curves for MalPEG-Hb and HbA. In summary, the present studies found similar rates of NO binding to HbA and MalPEG-Hb, eliminating the possibility that the lack of vasoactivity of MalPEG-Hb is simply the result of reduced molecular reactivity with NO. Alternatively, the unique O2-binding characteristics with low p50 and co-operativity suggest that the 'R-state' conformation of MalPEG-Hb is in a more T-state configuration and restricted from conformational change.

Hemoglobins↗

Ultraviolet matrix-assisted laser desorption/ionization time-of-flight mass spectrometry of intact hemoglobin complex from whole human blood.

Ultraviolet matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (UV-MALDI-TOFMS) was applied to the analysis of intact human hemoglobin complex directly from whole human blood. The less acidic matrix substance 2,6-dihydroxyacetophenone provided sufficient insensitivity to the impurities present in this crude biological matrix to make any sample pretreatment except dilution dispensable. This matrix facilitated exact molecular mass determination of the non-assembled hemoglobin alpha- and beta-chain (SD < or = +/-0.28 Da and Deltam < or =6.4 ppm for n = 10) if trifluoroacetic acid was used as an additive. Replacement of the denaturing additive trifluoroacetic acid by the neutral salt ammonium acetate allowed the detection of the intact hemoglobin alpha(2)beta(2)H(n)-assembly (n = 0-4) and the alphabeta-subassembly. A prerequisite for the detection of the noncovalent complex was the application of a very soft sample preparation procedure. Crystal morphology, sample concentration and laser pulse energy were also found to be important parameters for the analysis of the intact protein complexes. However, comparison with published electrospray ionization (ESI)-MS results on mammalian hemoglobin molecules shows that, even under the applied gentle conditions, MALDI does not provide a completely reliable picture of the solution-phase equilibrium. In contrast to ESI, especially extensive loss of the heme b (H) groups was noticed. The disruption of the rather stable heme b-globin interaction is assumed to be induced by photo-excitation during the desorption/ionization process.

Hemoglobins↗

Reductive nitrosylation and S-nitrosation of hemoglobin in inhomogeneous nitric oxide solutions.

Elucidating the reaction of nitric oxide (NO) with oxyhemoglobin [HbFe(II)O2] is critical to understanding the metabolic fate of NO in the vasculature. At low concentrations of NO, methemoglobin [HbFe(III)] is the only detectable product from this reaction; however, locally high concentrations of NO have been demonstrated to result in some iron-nitrosylhemoglobin [HbFe(II)NO] and S-nitrosohemoglobin (SNO-Hb) formation. Reductive nitrosylation through a HbFe(III) intermediate was proposed as a viable pathway under such conditions. Here, we explore another potential mechanism based on mixed valenced Hb tetramers. The oxidation of one or two heme Fe(II) in the R-state HbFe(II)O2 has been observed to lower the oxygen affinity of the remaining heme groups, thus creating the possibility of oxygen release and NO binding at the heme Fe(II) sites. This mixed valenced hypothesis requires an allosteric transition of the Hb tetramer. Hence, this hypothesis can account for HbFe(II)NO formation, but not SNO-Hb formation. Here, we demonstrate that cyanide attenuated the formation of SNO-Hb by 30-40% when a saturated NO bolus was added to 0.1-1.0 mM HbFe(II)O2 solutions. In addition, HbFe(II)NO formation under such inhomogeneous conditions does not require allostericity. Therefore, we concluded that the mixed valenced theory does not play a major role under these conditions, and reductive nitrosylation accounts for a significant fraction of the HbFe(II)NO formed and approximately 30-40% of SNO-Hb. The remaining SNO-Hb is likely formed from NO oxidation products.

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