Assignment of proximal histidyl imidazole exchangeable proton NMR resonances to individual subunits in hemoglobins A, Boston, Iwate and Milwaukee.
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Biomedical subjects
Publications and source records attributed to F Taketa.
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Erythrocytes from heterozygous carriers of the high oxygen affinity mutant hemoglobin, Hb Wood, demonstrate lower rates of methemoglobin reduction than normal human red cells when incubated in the in vitro system of Beutler and Baluda. The rate of methemoglobin reduction in red cells from an individual who is heterozygous for both NADH-methoglobin reductase deficiency and Hb Wood shows the combined effects of the two mutations.
The organic phosphate allosteric effectors of hemoglobin, inositol hexaphosphate, 2,3-diphosphoglycerate, and ATP, interact with NADH-methemoglobin reductase (NADH-diaphorase). Significant inhibitory effects on the enzyme were found when dichlorophenolindophenol, or ferricyanide were used as electron acceptors in place of methemoglobin. In contrast, apparent stimulation of enzyme activity was observed when adult human methemoglobin was used as the electroganic phosphate on the rate of reaction due to its interaction with the substrate methemoglobin to produce the favored T type of quaternary conformation. The inhibitory effect of inositol hexaphosphate on the enzyme is associated with a perturbation in the reactivity of essential sulfhydryl group(s) on the enzyme. It is suggested that the interaction of the organic phosphate with the enzyme as well as with the substrate is significant in determining the overall rate of methemoglobin reduction.
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Methemoglobin reductase was found to be inactivated during electrophoresis on ammonium persulfate polymerized polyacrylamide gels. Hemoglobin in various states of ligation offers protection from inactivation. Thiols such as dithiothreitol also offer protection but the effect due to hemoglobin is not provided by its sulfhydryl groups.
Diagnostic value of citrate agar electrophoresis. Am J Clin Pathol 71:668-671, 1979. Of approximately three dozen hemoglobin variants that have greater than usual oxygen affinity, nearly half are inseparable from hemoglobin A by electrophoresis at pH 8.6. A comparison of hemoglobins Wood (alpha2beta297leu) and Malmö (alpha2beta297gln) is of interest from several standpoints. They represent similar substitutions at the identical locus in the beta chain. They result in identical clinical and hematologic manifestations. Oxygen affinities of these variants are identical. Both are poorly resolved from hemoglobin A by electrophoresis at pH 8.6. The position of each is identical when studied by isoelectric focusing in polyacrylamide gel. Finally, they are easily distinguished by citrate agar electrophoresis at pH 6.2. The excellent resolution of hemoglobins Malmö and Wood from each other results neither from difference in charge, nor size, nor in quaternary structure. This technic provides a simple but effective means for identifying and differentiating these hemoglobin variants. Comparison with the results of citrate agar electrophoresis of other high oxygen-affinity hemoglobins indicates that the findings for hemoglobins Malmö and Wood are unique and unambiguous.
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The two major hemoglobins found in domestic cat blood occur within the same erythrocyte. A putative asymmetrical hybrid, alpha2betaAbetaB, is shown to be present in the cell by isoelectric focusing.
O-Iodobenzoate interacts non-covalently with hemoglobin and lowers the oxygen affinity of the protein. In contrast to 2,3-diphosphoglycerate or inositol hexaphosphate, its interaction does not depend upon the presence of free amino groups at the beta-chain amino terminals. Lysine beta82 is one of its oxygenation linked binding sites. As with the organic phosphates, the halogenated benzoate reacts preferentially with deoxy-hemoglobin to shift the allosteric equilibrium from R to T.
The tryptic peptides from the betaA and betaB chains of cat hemoglobins A and B have isolated and the amino acid compositions determined. Differences between the two chains were found in two peptides, betaT-1 (Glylead toSer) and betaT-14 (Asnlead toSer and Lyslead toArg). The Glylead toSer and Lysleand toArg substitutions areplaced at beta-1 and beta-144 respectively from earlier work, and the third substitution, AsnleadSer at beta-139 is suggested from this work. in addition, the presence of a blocked amino terminus in betaB has been confirmed. Tentative sequences constructed by homology with known beta-chain structures suggest the occurrence of substitutions at alpha1beta1 contacts in betaA and betaB that may be functionally significant. There are at least 18 differences in amino acid composition between cat betaA and dog beta-chains and 22 differences between cat betaA and normal adult human beta-chains.
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The characterization of hemoglobin Wood (beta97(FG4) His replaced by Leu), a high oxygen affinity hemoglobin with reduced Hill constant is described. The amino acid substitution occurs at the alpha1beta2 interface, in the same position as in hemoglobin Malmö (beta97(FG4) His replaced by Gln) and in an homologous position when compared with hemoglobins Chesapeake (alpha92(FG4) Arg replaced by Leu) and J. Capetown (alpha92(fg4) arg replaced by Gln).
Properties of Hb Wood (beta-97(FG4)His leads to Leu), a high oxygen affinity hemoglobin with reduced hemeheme interaction, were examined in its nitric oxide liganded form. The reactivity of the beta-93 thiol groups and the electron paramagnetic resonance (EPR) spectrum were examined to determine what effect the amino acid substitution, which occurs at the alpha1beta2 interface, would have on inositol hexaphosphate induced transition of this form of the tetramer. Binding of inositol hexaphosphate (IHP) in a 1:1 stoichiometry was demonstrated. In spite of apparently normal interaction with IHP, there was little or no change in the reactivity of the beta-93 thiol groups and in the electron paramagnetic resonance (EPR) spectrum as contrasted with the marked changes characteristic of normal hemoglobin (HbA). In contrast with NO-HbA, there was also no development of the EPR hyperfine structure in NO-Hb Wood with increased protonation of the protein at pH below 7.0. Taken together with the observations of Henry and Banerjee ((1973), J. Mol. Biol. 73, 469) on the development of NO-Hb EPR hyperfine structure and of Perutz et al. (1974a), Biochemistry 13, 2174) on changes in thiol reactivity with the R leads to T transition, the results suggest that IHP or H+ cannot switch NO-Hb Wood to the T conformation. Since the atomic structures of met- and deoxyhemoglobin offer no indication that His-97 plays any special part in the allosteric mechanism (M. E. Perutz, personal communication), it appears that the replacement of His-97 by Leu reduces the stability of the T structure relative to that of R.
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