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African elephant myoglobin with an unusual autoxidation behavior: comparison with the H64Q mutant of sperm whale myoglobin.

Elephant myoglobins both from Asian and African species have a glutamine in place of the usual distal (E7) histidine at position 64. We have isolated native oxymyoglobin directly from the skeletal muscle of African elephant (Loxodonta africana), and examined the autoxidation rate of oxymyoglobin (MbO2) to metmyoglobin (metMb) as a function of pH in 0.1 M buffer at 25 degreesC. As a result, African elephant MbO2 was found to be equally resistant to autoxidation as sperm whale myoglobin. However, the elephant myoglobin exhibited a distinct rate saturation below pH 6. Kinetic analysis of the pH profiles for the autoxidation rate has disclosed that African elephant MbO2 does not show any proton-catalyzed process, such as the one that can play a dominant role in the autoxidation reaction of sperm whale myoglobin by involving the distal histidine as its catalytic residue. Such a greater stability of African elephant MbO2 at low pH could be explained almost completely by the single H64Q mutation of sperm whale myoglobin. In African elephant aqua-metmyoglobin the Soret band was considerably broadened so as to produce another peak in the pentacoordinate 395 nm region. This unique spectral feature was therefore analyzed to show that the myoglobin is in equilibrium between two species, depending upon the presence or absence of a water molecule at the sixth coordinate position.

Africa↗

Myoglobin as an oxygen indicator for measuring the oxygen binding characteristics of a modified myoglobin derivative containing covalently bound mesoheme.

By measuring the visible spectrum of a mixture of myoglobin and a modified derivative containing mesoheme in place of the normal protoheme, it is possible to evaluate the relative amounts of the oxidized, reduced, and oxygenated forms of each type of myoglobin. If the oxygen affinity of one myoglobin derivative is known, the oxygen affinity of the other can be determined from measurements at various oxygen partial pressures. In the absence of excess reducing agent, the rate of autoxidation can also be evaluated during the same experiment. The method described is suitable at very low oxygen partial pressures, where most previous methods are inaccurate, and it is very convenient to use, since no time-consuming calibration procedures are required. Using protoheme myoglobin as an oxygen indicator, the oxygen pressure at half saturation (P 1/2) of mesoheme myoglobin was shown to be 11% higher than the P 1/2 of a modified myoglobin derivative containing covalently bound mesoheme. The autoxidation rate of the covalent derivative is faster than that of the noncovalent derivative, but it is less dependent on oxygen pressure.

Chemical Phenomena↗

[Effect of physical exercise on myoglobin and tropomyosin levels in skeletal muscles and myoglobin level in rat blood].

Single intensive physical exercise caused phase alterations in content of myoglobin and tropomyosin in rat skeletal muscles. Within the first 2-4 hrs of rest concentration of myoglobin and tropomyosin was decreased in muscles by 40-50% (catabolic, urgent step of adaptation). Within the later period of rest (72-120 hrs) content of myoglobin and tropomyosin was increased by 25-30% (anabolic, later step of adaptation) as compared with the control level. Similar phase alterations of these proteins in skeletal muscles were detected in trained animals but they were less distinct. Training of the animals led to elevation in content of the proteins in musculus quadriceps. The content of myoglobin increased from 1.2 +/- 0.1 mg/kg up to 2.6 +/- 0.1 mg/kg and that of tropomyosin from 4.9 +/- 0.1 mg/kg up to 5.5 +/- 0.1 mg/kg as a result of an increase in protein biosynthesis. Incorporation of 14C-leucine into myoglobin was increased 1.7-fold. Concentration of myoglobin in blood of untrained rats was increased 3-fold immediately after physical exercises and--9-fold within 72 hrs of the rest. Content of muscular proteins in blood reflected the response of muscle system to physical exercises and may serve as a criterion in evaluation of various steps of adaptation to physical loading.

Animals↗

Oxygen consumption in myoglobin-rich and myoglobin-poor isolated fish cardiomyocytes.

The function of myoglobin at the cellular level was investigated by comparing O2 consumption in isolated myoglobin-rich cardiac myocytes from the sea raven (Hemitripterus americanus) and myoglobin-poor myocytes from the ocean pout (Macrozoarces americanus). O2 consumption by sea raven myocytes, 0.21 +/- 0.04 microM O2/10(6) cells.min-1, was significantly higher than O2 consumption by ocean pout myocytes, 0.10 +/- 0.07 microM O2/10(6) cells.min-1 at high PO2. O2 consumption in sea raven myocytes treated with sodium nitrite was not significantly different than that in untreated myocytes at high PO2, but it was significantly lower than controls at low PO2. O2 consumption of sea raven myocytes treated with the mitochondrial uncoupler CCCP was not significantly different from that of control myocytes at high PO2, but it was significantly greater than untreated controls at low PO2. In ocean pout preparations, O2 consumption by nitrite-treated myocytes was significantly higher than that of untreated myocytes at high PO2, but it was not different from that of controls at low PO2. CCCP-treated ocean pout myocytes had a significantly higher oxygen consumption than that of untreated myocytes at high PO2, but oxygen consumption was not different from that of controls at low PO2. The CCCP-activated O2 consumption at low PO2 was myoglobin-dependent in that CCCP alone resulted in a threefold increase in sea raven cells over controls but had no impact on sea raven cells in the presence of nitrite or ocean pout cells treated with CCCP alone. This study further supports the contention that myoglobin only plays an important role in oxygen metabolism at low extracellular PO2's.

Animals↗

Shark myoglobins I. Isolation and characterization of myoglobins from the sharks, Squalus japonicus and Proscyllium habereri.

Native oxymyoglobins from the sharks, Squalus japonicus and Proscyllium habereri were also isolated directly from red muscle. The essential step was the chromatographic separation of oxymyoglobin from metmyoglobin on a DEAE-cellulose column. The rate of autoxidation of native oxymyoglobin to metmyoglobin was examined over the pH range of 5-12 in 0.1 M buffer at 25 degrees C and the logarithms of the observed first-order rate constants, log (kobs), were plotted as a function of pH. The pH dependence for the autoxidation of Squalus myoglobin showed almost the same profile as those of bovine, sperm whale and yellowfin tuna myoglobins with distal histidines. On the other hand, the pH dependence of Proscyllium myoglobin differed remarkably from those of other myoglobins, especially in the absence of the proton-catalyzed processes in the acidic region of pH. These results suggest that Proscyllium myoglobin lacks distal histidine.

Animals↗

Mathematical modeling of myoglobin facilitated transport of oxygen in devices containing myoglobin-expressing cells.

Low pO(2) is perhaps the most significant factor in artificial pancreas failure. In these environments, not only is the beta cell production of insulin reduced, but the cell death rate is also significantly higher. Mathematical models are developed to test the feasibility of facilitated oxygen transport in enhancing O(2) flux to genetically engineered cells in a bioartificial device such as a pancreas. For this device, it is proposed that beta cells be genetically engineered to express myoglobin throughout the cell. In addition, the significance of including myoglobin throughout the alginate matrix present to provide immuno-protection for the transplanted cells is considered. The mathematical analysis predicts that myoglobin facilitated oxygen transport has the potential of increasing the oxygen concentration at the centre of a cluster of cells (islet) with an effective radius of 100 microm by 50%. These theoretical models for myoglobin facilitated oxygen transport with homogeneous Michaelis-Menten consumption also indicate that including myoglobin in the alginate gel would beneficially improve the flux of oxygen to the transplanted cells.

Alginates↗

A double mutant of sperm whale myoglobin mimics the structure and function of elephant myoglobin.

The functional, spectral, and structural properties of elephant myoglobin and the L29F/H64Q mutant of sperm whale myoglobin have been compared in detail by conventional kinetic techniques, infrared and resonance Raman spectroscopy, 1H NMR, and x-ray crystallography. There is a striking correspondence between the properties of the naturally occurring elephant protein and those of the sperm whale double mutant, both of which are quite distinct from those of native sperm whale myoglobin and the single H64Q mutant. These results and the recent crystal structure determination by Bisig et al. (Bisig, D. A., Di Iorio, E. E., Diederichs, K., Winterhalter, K. H., and Piontek, K. (1995) J. Biol. Chem. 270, 20754-20762) confirm that a Phe residue is present at position 29 (B10) in elephant myoglobin, and not a Leu residue as is reported in the published amino acid sequence. The single Gln64(E7) substitution lowers oxygen affinity approximately 5-fold and increases the rate of autooxidation 3-fold. These unfavorable effects are reversed by the Phe29(B10) replacement in both elephant myoglobin and the sperm whale double mutant. The latter, genetically engineered protein was originally constructed to be a blood substitute prototype with moderately low O2 affinity, large rate constants, and increased resistance to autooxidation. Thus, the same distal pocket combination that we designed rationally on the basis of proposed mechanisms for ligand binding and autooxidation is also found in nature.

Amino Acid Sequence↗

Crystal structures of modified myoglobins. I. Heme orientation and structural changes around heme in myoglobins reconstituted with isopemptoheme, pemptoheme, 2-ethyldeuteroheme, and 4-ethyldeuteroheme.

The crystal structures of sperm whale metmyoglobins reconstituted with four modified hemes, isopemptoheme, pemptoheme, 2-ethyldeuteroheme, and 4-ethyldeuteroheme, have been determined and refined at 2.2 A resolution to R = 0.217, 0.218, 0.213, and 0.222, respectively. All the crystals of these myoglobins are isomorphous with that of native metmyoglobin. The structural changes of the modified myoglobin from the native myoglobin were examined on difference Fourier maps; the orientation of 4-ethyldeuteroheme in the heme pocket is such that the heme is rotated by 180 degrees about an axis through the alpha-gamma-meso carbons, whereas the orientations of the other three hemes are the same as that of the protoheme in the native myoglobin. The changes of the structures around the heme become greater in the order of isopemptoheme, 2-ethyldeuteroheme less than pemptoheme less than 4-ethyldeuteroheme. The magnitudes of the changes seem to be related to the oxygen affinities of these four reconstituted myoglobins.

Animals↗

Utilization of myoglobin as a heme source by Haemophilus influenzae requires binding of myoglobin to haptoglobin.

Haemophilus influenzae has an absolute growth requirement for heme. One potential in vivo source of heme is the protein myoglobin which is found at low levels in human serum. No tested H. influenzae strain was able to use myoglobin as a heme source. However, all strains were able to utilize the heme from myoglobin when myoglobin was complexed with haptoglobin. Utilization of the haptoglobin-myoglobin complex was shown to be mediated by the previously described hemoglobin/hemoglobin-haptoglobin-binding proteins of H. influenzae.

Bacterial Proteins↗

[Amino acid sequence of Ondatra myoglobin (Ondatra zibethica). Characteristic features of myoglobins from semiaquatic animals].

Based on the amino acid composition of globin, amino acid analysis and N-terminal sequencing of peptides as well as a comparative analysis of the primary structure of beaver, coypu rat and otter myoglobins with the use of the fingerprinting technique, the amino acid sequence of the major component of ondatra myoglobin including 153 amino acid residues was reconstructed. The results of a comparative analysis of the primary structure of myoglobin and the peculiarities of the functional morphology of myoglobins from semi-aquatic animals and sperm whale and the role of amino acid substitutions in the spatial structure of ondatra myoglobin are discussed.

Amino Acid Sequence↗

1.70 A resolution structure of myoglobin from yellowfin tuna. An example of a myoglobin lacking the D helix.

The crystal structure of metmyoglobin from yellowfin tuna (Thunnus albacares) has been determined by molecular replacement methods and refined to a conventional R factor of 0.177 for all observed reflections in the range of 6.0-1.70 A resolution. Like other myoglobins for which a high-resolution structure is available, the polypeptide chain is organized into several helices that cooperate to form a hydrophobic pocket into which the heme prosthetic group is non-covalently bound; however, the D helix observed in other myoglobins is absent in myoglobin from yellowfin tuna and has been replaced with a random coil. As well, the A helix has a pronounced kink due to the presence of Pro16. The differences in structure between this and sperm whale myoglobin can be correlated with their reported dioxygen affinity and dissociation. The structure is in agreement with reported fluorescence data which show an increased Trp14.heme distance in yellowfin tuna compared to sperm whale myoglobin.

Journal Article↗

The myoglobin protein radical. Coupling of Tyr-103 to Tyr-151 in the H2O2-mediated cross-linking of sperm whale myoglobin.

Sperm whale metmyoglobin, which has tyrosine residues at positions 103, 146, and 151, dimerizes in the presence of H2O2. Equine metmyoglobin, which lacks Tyr-151, and red kangaroo metmyoglobin, which lacks Tyr-103 and Tyr-151, do not dimerize in the presence of H2O2. The dityrosine content of the sperm whale myoglobin dimer shows that it is primarily held together by dityrosine cross-links, although more tyrosine residues are lost than are accounted for by dityrosine formation. Digestion of the myoglobin dimer with chymotrypsin yields a peptide with the fluorescence spectrum of dityrosine. The amino acid composition, amino acid sequence, and mass spectrum of the peptide show that cross-linking involves covalent bond formation between Tyr-103 of one myoglobin chain and Tyr-151 of the other. Replacement of the prosthetic group of sperm whale myoglobin with zinc protoporphyrin IX prevents H2O2-induced dimerization even when intact horse metmyoglobin is present in the incubation. This suggests that the tyrosine radicals required for the dimerization reaction are generated by intra- rather than intermolecular electron transfer to the ferryl heme. Rapid electron transfer from Tyr-103 to the ferryl heme followed by slower electron transfer from Tyr-151 to Tyr-103 is most consistent with the present results.

Animals↗

Myoglobin-induced oxidative damage: evidence for radical transfer from oxidized myoglobin to other proteins and antioxidants.

Reaction of equine Fe(III) myoglobin with H2O2 gives rise to an Fe(IV)-oxo species at the heme center and protein (globin)-derived radicals. Studies have shown that there are two (or more) sites for the protein-derived radical: at tyrosine (Tyr-103) or tryptophan (Trp-14). The latter radical reacts rapidly with oxygen to give a Trp-derived peroxyl radical. The formation of both the tyrosine phenoxyl radical and the tryptophan-derived peroxyl species have been confirmed in the present study; the latter appears to be the major initial radical, with the phenoxyl radical appearing at longer reaction times, possibly via secondary reactions. We have investigated, by EPR spectroscopy, the reactivity of the Trp-14 peroxyl radical with amino acids, peptides, proteins, and antioxidants, with the aim of determining whether this species can damage other targets, i.e., whether intermolecular protein-to-protein radical transfer and hence chain-oxidation occurs, and the factors that control these reactions. Three amino acids show significant reactivity: Tyr, Trp, and Cys, with Cys the least efficient. Evidence has also been obtained for (inefficient) hydrogen abstraction at peptide alpha-carbon sites; this may result in backbone cleavage in the presence of oxygen. The myoglobin Trp-14 peroxyl radical has been shown to react rapidly with a wide range of proteins to give long-lived secondary radicals on the target protein. These reactions appear to mainly involve Tyr residues on the target protein, although evidence for reaction at Trp has also been obtained. Antioxidants (GSH, ascorbate, Trolox C, vitamin E, and urate) react with the myoglobin-derived peroxyl radical; in some cases antioxidant-derived radicals are detected. These reactions are only efficient at high antioxidant concentrations, suggesting that protein-to-protein damage transfer and protein chain-oxidation may occur readily in biological systems.

Amino Acids↗

Comparison of the amino acid sequence of pig heart myoglobin with other ungulate myoglobins.

The primary structure of pig heart myoglobin has been established by study of the tryptic peptides of whole globin and by analysis of the fragments obtained by CNBr cleavage. Thermolysin and chymotrypsin digestion were used to determine the sequence of the M fragment (56-131). Automatic Edman degradation of whole globin and of the M fragment completed the sequence of pig myoglobin. Comparison with other ungulates shows that pig myoglobin is far from other artiodactyls previously studied (ox and sheep) and close to the eutherian ancestral chain.

Amino Acid Sequence↗

Studies on cobalt myoglobins and hemoglobins. Interaction of sperm whale myoglobin and Glycera hemoglobin with molecular oxygen.

The pH dependence of the electron paramagnetic resonance (EPR) spectrum and oxygen affinity of cobaltous porphyrin-containing myoglobin (CoMb) have been examined. The hyperfine structures of the EPR spectrum of oxy-CoMb undergo small, reversible pH-dependent changes with pK values of 5.33, 5.55, and 5.25 +/- 0.05 for proto-, meso-, and deutero-CoMb's, respectively, whereas deoxy-CoMb does not exhibit any pH dependence of its EPR spectrum. The partial pressure of oxygen at half-saturation of proto-CoMb decreases from 26 to 42 Torr on lowering the pH from 7.0 to 4.8. For comparison, we have prepared cobaltous porphyrin-containing monomeric Glycera hemoglobin (CoHb (Glycera)), in which the distal histidyl group of myoglobin is replaced by a leucyl residue, and examined the equilibria and kinetics of its oxygenation and EPR spectrum. CoHb (Glycera) has exhibited a very low oxygen affinity (p50 = 7 X 10(2) Torr at 5 degrees) and a large dissociation rate constant (more than 8 X 10(4) S-1 at 5 degrees). The EPR spectrum of oxy-CoHb (Glycera) was affected by neither pH nor replacement of H2O with D2O. Low temperature photodissociation studies by EPR and spectrophotometry have shown that the photolyzed form of the ligated hemoglobin (Glycera) is similar to its deoxy form, in contrast to myoglobin which gives a new intermediate states as the photolyzed form. These differences between CoMb and CoHb (Glycera) are interpreted with relation to the possible role of the distal histidyl residue in CoMb.

Animals↗

[Primary structure of otter (Lutra lutra L.) myoglobin. II. Pepsin peptides of trypsin hydrolysate. Reconstruction of the polypeptide chain of the otter myoglobin globin component].

13 peptic peptides have been isolated from the insoluble (at pH 5.0) fraction of the tryptic hydrolysate of main chromatographic component of otter myoglobin and their amino acid composition and N-terminal amino acid sequences have been determined. The isolated peptides contain in total 40 amino acid residues. The results obtained, along with those on tryptic peptides and the comparison with homologous portions of myoglobins of the known primary structure, allowed reconstructing the complete amino acid sequence of otter myoglobin.

Amino Acid Sequence↗

Specific modification of structure and property of myoglobin by the formation of tetrazolylhistidine 64(E7). Reaction of the modified myoglobin with molecular oxygen.

Tetrazole-myoglobin (Tet-Mb), a site selectively modified myoglobin with tetrazole anion (-CN4-) covalently attached to the imidazole N epsilon of the distal histidine 64(E7) (see Fig. 1; Kamiya, N., Shiro, Y., Iwata, T., Iizuka, T., and Iwasaki, H. (1991) J. Am. Chem. Soc. 113, 1826-1829), exhibited unique properties in the reduction from ferric to ferrous states and in the reaction of its deoxy form with O2. The redox potential of Tet-Mb is obtained to be -193 mV, which is much lower than that of unmodified (native) myoglobin (50 mV), possibly due to the electrostatic interaction between the heme iron and the tetrazole group. The ferrous deoxy form of Tet-Mb was rapidly oxidized to its ferric form in the reaction with O2 at room temperature through an intermediary formation of its oxy form and with the generation of O2-. The oxy form of Tet-Mb can be detected by the optical spectral measurement at -12 degrees C, the rapid scan measurement at room temperature, and the electron spin resonance measurement of its cobalt-substituted derivative (Tet-Mb(Co2+)) at 77 K. In the kinetic measurement of the O2 binding reaction to Tet-Mb, its association and dissociation rate constants in the bimolecular reaction were 6.1 x 10(7) M-1 s-1 and 2200 s-1, respectively, showing that the tetrazole modification of His-64 extremely accelerates its association and dissociation rates. Taken together with the extremely fast autoxidation rate (53 h-1) obtained, these kinetic results suggested that the channel of O2 from the solvent region to the protein interior is open enough to pass the external ligand. The structure is discussed in relation to those of some genetic mutants. Taking these properties, we demonstrated that Tet-Mb can catalyze O2 consumption to generate O2-, coupled with the NADH-supported enzymatic reduction system of cytochrome P-450cam under an aerobic condition.

Amino Acid Sequence↗

The antibody response to myoglobin--I. Systematic synthesis of myoglobin peptides reveals location and substructure of species-dependent continuous antigenic determinants.

Sets of peptides representing all the possible hepta-, octa-, nona- and decapeptides of sperm whale myoglobin were synthesized. An ELISA method was used to detect the ability of antibodies, present in antisera raised against native sperm whale myoglobin, to bind to these peptides. Antisera made in two species were compared. It was found that the peptides recognized by the antibodies were a function of the species in which the antiserum was prepared and of the individual outbred member of that species. Peptides corresponding to surface epitopes of the native antigen were identified by reacting the antisera with native antigen prior to ELISA testing on peptides. More detailed analysis of one epitope revealed that, for some sera, a leucine residue which is facing inwards in the crystal structure is critical for the binding of antibody to the peptide. This suggests that binding between native antigen and antibody can require a restructuring of the native antigen.

Animals↗