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Biomedical subjects

G Bemski

Publications and source records attributed to G Bemski.

At least 19 recordsLinked to original sources

Proton electron nuclear double resonance from nitrosyl horse heart myoglobin: the role of His-E7 and Val-E11.

Electron nuclear double resonance (ENDOR) spectroscopy has been used to study protons in nitrosyl horse heart myoglobin (MbNO). (1)H ENDOR spectra were recorded for different settings of the magnetic field. Detailed analysis of the ENDOR powder spectra, using computer simulation, based on the "orientation-selection" principle, leads to the identification of the available protons in the heme pocket. We observe hyperfine interactions of the N(HisF8)-Fe(2+)-N(NO) complex with five protons in axial and with eight protons in the rhombic symmetry along different orientations, including those of the principal axes of the g-tensor. Protons from His-E7 and Val-E11 residues are identified in the two symmetries, rhombic and axial, exhibited by MbNO. Our results indicate that both residues are present inside the heme pocket and help to stabilize one particular conformation.

Animals↗

Temperature dependence of Q-band electron paramagnetic resonance spectra of nitrosyl heme proteins.

The Q-band (35 GHz) electron paramagnetic resonance (EPR) spectra of nitrosyl hemoglobin (HbNO) and nitrosyl myoglobin (MbNO) were studied as a function of temperature between 19 K and 200 K. The spectra of both heme proteins show two classes of variations as a function of temperature. The first one has previously been associated with the existence of two paramagnetic species, one with rhombic and the other with axial symmetry. The second one manifests itself in changes in the g-factors and linewidths of each species. These changes are correlated with the conformational substates model and associate the variations of g-values with changes in the angle of the N(his)-Fe-N(NO) bond in the rhombic species and with changes in the distance between Fe and N of the proximal (F8) histidine in the axial species.

Biophysical Phenomena↗

Nitrosyl hemoglobins: EPR above 80 K.

The EPR spectra of nitrosyl hemoglobin and myoglobin in different conditions (native, denatured and lyophilized), as well as of hematin-NO were obtained in the temperature range of 80-280 K. There is a substantial and reversible decrease of the areas of the EPR spectra of all the hemoglobin samples above 150 K. The interpretation of the results implies the existence of two conformational states in thermal equilibrium, only one of which is EPR detectable. Thermodynamical parameters are determined for the hexa- and penta-coordinated cases.

Electron Spin Resonance Spectroscopy↗

Nitrosyl hemoglobin: EPR components at low temperatures.

The EPR spectrum of nitrosyl hemoglobin has been studied from 7.5 K to 104 K. It is composed of at least three components (A, B and C) which have a different dependence on temperature and power level. The A component decreases with increasing temperature. The B component disappears at around 30 K and is replaced by C. Relaxation of A follows the Orbach mechanism with an energy of 28 cm-1. This behavior can be attributed to phonon induced changes in the orientation of NO with respect to the heme plane.

Biophysical Phenomena↗

E.p.r. studies of photolysis of nitrosyl haemoglobin at low temperatures.

Photolysis of HbNO has been studied from 6.2 K to 15.5 K by electron spin resonance during and after continuous illumination. Non-exponential kinetics of both dissociation and reassociation of NO was observed. The prolonged illumination separates the fast and slow ligands. This picture is consistent with NO tunnelling from two sites at different distances from the bound position. This result is obtained using a model of a sum of two exponentials or of conformational substates.

Electron Spin Resonance Spectroscopy↗

Spin relaxation of iron in mixed state hemoproteins.

In hemoproteins the relaxation mechanism of iron is Orbach for high spin (HS) and Raman for low spin (LS). We found that in met-hemoglobin and met-myoglobin, under conditions in which the two spin states coexist, both the HS and the LS states relax to the lattice through Orbach-like processes. Alos, very short (approximately 1 ns) and temperature independent transverse relaxation times T2 were estimated. This may result from the unusual electronic structure of mixed states hemoproteins that allows thermal equilibrium and interconversion of the spin states.

Animals↗

High and low spin state mixture in methemoglobin and metmyoglobin.

The mixture of low and high iron spin states is studied by electron spin resonance in methemoglobin and in metmyoglobin between 6K and 100K. The crystals contain iron (Fe3) exclusively in the high spin state, while powdered samples show a mixture of high and low spin iron. We detected, for the first time, the low spin state in metmyoglobin at low temperatures. The ratio of high to low spin concentrations (k-1) varies exponentially with inverse of temperature in both proteins, only the absolute value is greater in myoglobin. The slope of K-1 depends on the cooling rate and on the temperature range. The results are qualitatively explained assuming a temperature dependent distribution of crystical field around the cristal value, delta c.

Electron Spin Resonance Spectroscopy↗

EPR spectral changes of nitrosyl hemes and their relation to the hemoglobin T-R transition.

EPR spectra of nitrosyl hemes were used to study the quaternary structure of hemoglobin. Human adult hemoglobin has been titrated with nitric oxide at pH 7.0 and 25 degrees C. After the equilibration of NO among the alpha and beta subunits the samples were frozen for EPR measurements. The spectra were fitted by linear combinations of three standard signals: the first arising from NO-beta-hemes and the other two arising for NO-alpha-hemes of molecules in the high- and low-affinity conformations. The fractional amounts of alpha subunits exhibiting the high-affinity spectrum fitted the two-state model (Edelstein, S.J. (1974) Biochemistry 13, 4998-5002) with the allosteric constant L = 7.10(6) and relative affinities cNO alpha and cNO beta approx. 0.01. Hemoglobin has been marked with nitric oxide one chain using low-saturation amounts of nitric oxide. The EPR spectra was studied as a function of oxygen saturation. Linear combinations of the three standard signals above fitted these spectra. The fractions of molecules exhibiting the high-affinity spectrum fitted the two-state model with L = 7 . 10(6), c)2 = 0.0033 and cNO alpha = 0.08, instead of cNO alpha = 0.01. Thus, the two-state model is not adequate to describe the conformational transition of these hybrids. The results present evidence of the non-equivalence between oxygen and nitric oxide as ligands.

Adult↗

Rotation of sickle cells in homogeneous magnetic fields.

Deoxygenated sickle cells (HbS) have been shown to orient in homogeneous magnetic fields because of magnetic anisotropy of the hemes. The time of rotation is proportional to 1/H2 and is in agreement with theory. Structural information concerning the orientation of HbS molecules in the fibers is obtained from these experiments and is shown to agree substantially with existing models.

Anemia, Sickle Cell↗

Electron paramagnetic resonance of Cu2+:Mb single crystal. Conformational changes.

Copper introduced into met-myoglobin crystals occupies various sites as indicated by electron paramagnetic resonance parameters. Cu2+ (A) is probably liganded to histidine A10, lysine A14, and asparagine GH4 (Banaszak et al., 1965) and shows superhyperfine interaction with a single (imidazole) nitrogen. Cu2+ (B) and Cu2+ (C) correspond to other anisotropic sites described in less detail. Cu2+ (A) exhibits a transition to an isotropic form with a transition temperature of 40.5 degrees C. This transition indicates a conformational change in myoglobin and could correspond to a motion of A helix away from the GH section. The transition temperature is 7 degrees C higher than the one previously reported (Atanasov, 1971) for myoglobin in solution.

Animals↗