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Exchange and shuttling of electrons by nitroxide spin labels.

The ability of nitroxide spin labels to act as oxidizers of reduced nitroxides (hydroxylamines) in biological and model systems was demonstrated. All of the nitroxides tested were able to act as oxidizing agents with respect to hydroxylamine derivatives of nitroxides. The rates of these reactions were first order with respect to nitroxide concentration and with respect to hydroxylamine concentration, making the reaction second order overall. The second-order rate constants are reported for a number of these reactions. These reactions proceeded to an equilibrium state and the equilibrium constants for several combinations of reactants are presented. Both the rate constants and the equilibrium constants were found to be dependent on the ring structure of the nitroxide and hydroxylamine, with piperidines being reduced more easily and pyrrolidines and oxazolidines being oxidized more easily. All of the hydroxylamine derivatives were oxidized by air to their respective nitroxides, with the rate of this oxidation greater for pyrrolidines than for piperidines. Furthermore, hydroxylamines that are permeable to lipid bilayers were able to act as shuttles of reducing equivalents to liposome-encapsulated nitroxides that were otherwise inaccessible to reducing agents. This mechanism of shuttling of electrons was able to explain the relatively rapid reduction by cells of a nonpermeable nitroxide in the presence of a permeable nitroxide.

Animals↗

Kinetics of enzyme-mediated reduction of lipid soluble nitroxide spin labels by living cells.

Nitroxide spin labels can be reduced to the corresponding hydroxylamines in cells. The selective action of inhibitors, and thermal and chemical inactivation demonstrate that the reduction of nitroxides in cells is an enzymatic or enzyme-mediated process. The kinetics of reduction of doxylstearates are affected by the position of the doxyl moiety along the stearic acid chain. The doxyl moiety of 5-doxylstearate is close to the membrane surface, and its reduction is first order with respect to the nitroxide, whereas the doxyl moieties of 10- and 12-doxylstearate are in the membrane hydrocarbon region and their reduction is a zero-order process. The reduction of 16-doxylstearate which usually has a mixture of first- and zero-order kinetics becomes zero order with addition of an extracellular broadening agent, potassium trioxalatochromiate(III). These results suggest that the rate of reduction of doxyl moieties is controlled by their accessibility to reducing equivalents, i.e., the rate-limiting step for the reduction of the doxyl moiety deep in the membrane is the diffusion of reducing equivalents within or into the membrane. The reduction of doxylstearates in cells is inhibited by rotenone but not antimycin A, cyanide, propyl gallate or SKF-525A. It appears that the reduction of doxylstearates takes place at the level of the ubiquinone in the respiratory chain in mitochondria in these cells.

Animals↗

ESR spin label and ultrastructural monitoring of protein-lipid interactions in the lens fiber-cell plasma membranes in relation to human ageing and cataractogenesis.

The Electron Spin Resonance (ESR) technique and the protein spin labels 2,2,4,4,9-pentamethyl-1,2,3,4-tetrahydro-gamma-carboline-3-oxyl and 4-(N-maleimido)-2,2,6,6-tetramethylpiperidine-1-oxyl were used in this study to probe the fluidity and binding ability to protein functional groups in human lens membranes. The image and the stage of cataract as well as the ultrastructural characteristics of the lens fiber cell membranes were evaluated in parallel studies. ESR measurements in membrane structures of the transparent lenses of different ages have shown that the sorbtion parameter of the carboline label on the surface of protein-lipid components was usually weakly expressed but increased with aging and the extent of immobilization of the bound label was not significant. At different stages of the lens opacification the carboline analogue spin label increasingly bound to the lens membranous structures. A spin label signal can be enhanced by addition to the samples of the paramagnetic probe K3Fe(CN)6. The maleimide spin label bound to the protein SH-groups in the cataractous lens membranes at a slow rate, however in transparent lenses a gradual increase of the rapidly binding phase of this label could be detected. The results show an appearance of at least two types of the reactive SH-groups in membranes of human transparent lenses. The electron microscopic studies suggested that the age-related and cataractogenic changes in the lens matter are accompanied by deterioration of the lenticular fiber plasma membranes and formation of the coalescing globules with a diameter of 220-500 nm. At the stage of cataract with advanced opacities, which is biochemically characterized by the increase in number of the carboline label binding sites with the surface proteins and annular lipids of membranes, a mass of amorphous aggregates filled with the electron-grey debris is formed contributing to significant scatter of light. It appears, therefore, that the suggested ESR spin label technique can be effectively used to monitor the aggregation process of protein membrane components which takes place during human cataractogenesis.

Adult↗

[Study of the binding of substrates and paramagnetic Mn2+ ions with phosphoglycerate kinase by saturating ESR spectra of a spin-labelled protein].

A single SH-group of phosphoglycerate kinase from yeast was modified by mercury-containing spin label. The saturation curves of ESR spectra of the spin-labeled enzyme were studied. The paramagnetic ions of Mn2+ bound to the centre of ion nonspecific binding or active centre in the complex with ATP can influence the saturation of the spin-labeled enzyme. The saturation curves of the ESR signal of the spin-labeled enzyme in the presence of paramagnetic complex of CrATP were studied. It has been demonstrated that the second nonspecific centre of ATP binding is located at the active site of the enzyme (3-phosphoglycerate binding centre).

Adenosine Triphosphate↗

Interaction of 70 S ribosomes from Escherichia coli with spin-labeled N-Cbz-Phe-tRNAPhe. An electron paramagnetic resonance study.

Two selectively spin-labeled Cbz-Phe-tRNAsPhe, one at position s4U8 and the other at position U33, have been used to study the dynamics of tRNA-ribosome interaction in the presence of poly(U) and factors washable from ribosomes. Upon binding to the ribosome, the correlation time of the spin label at position s4U8 decreases markedly while the same parameter for the label in the anticodon increases. The presence of poly(U) is not a prerequisite condition for the EPR spectral changes observed but larger variation occurs in the presence of factors washable from ribosomes. No variation in the correlation time is observed if uncharged spin-labeled tRNAPhe (on the s4U8 residue) is used in these experiments. Most of the ribosome-bound spin-labeled Cbz-Phe-tRNAPhe are puromycin-reactive, and consequently, the observed effect is manifested mainly at the ribosomal P site. These observations seem to suggest that the interaction between the N-blocked aminoacyl residue on the tRNA and the ribosome results in a conformational change on the tRNA, possibly involving tertiary interactions in a region close to s4U8. The role that the amino acid at the 3'-end can possibly play on this structural change is discussed.

Electron Spin Resonance Spectroscopy↗

[Conformational changes of spin-labeled native and modified phosphorylase B].

The phosphorylase B labelled with 2,2,6,6-tetramethyl-piperidine-1-oxyl-4-iodacetamide (phosphorylase I) and with 2,2,6,6-tetramethyl-piperidine-1-oxyl-4-ethylmaleinimide (phosphorylase II) was studied. It was shown that label I is characterized by a greater mobility with respect to the protein as compared to label II. In spin-labelled preparations of phosphorylase B the 1,5--2,0 SH-groups of the enzyme monomer having no effect on the enzyme activity were modified. The effects of AMP, glucose-1-phosphate and glucose-6-phosphate on the EPR spectrum of phosphorylase I were studied. The greatest changes in the spectrum (especially in the high field line) were found to occur in the presence of glucose-6-phosphate. These changes are due to the increase in the degree of anisotropic spin rotation. The experimental and theoretical spectra allowing to determine the correlation time for the protein moiety (tau b = 160 ns) were shown to be similar. The local conformation changes were found to occur in the vicinity of one of the two label-bound SH-groups of phosphorylase I. The EPR spectra demonstrate the S-shaped dependence of mobility of phosphorylase I label on concentration of glucose-6-phosphate (0,1--10 mM). In the presence of AMP no S-shaped dependence is observed. Reduced NaBH4 phosphorylase I does not reveal the S-shaped dependence of the label mobility on concentration of glucose-6-phosphate. The degree of the label immobilization in the apo-phosphorylase I--pyridoxal-5-chloromethylphosphonate complex in the presence of glucose-6-phosphate and AMP is the same as in cholophosphorylase I; however, in contrast to the choloenzyme it does not depend on glucose-6-phosphate (0,1--10,0 mM). The changes in the mobility of the spin label of apophosphorylase I and its complex with the AMP analog--adenosine-5'-chloromethylphosphonate--during the choloenzyme reconstruction by pyridoxalphosphate are indicative of participation of AMP and the phosphate group of AMP in the formation of the enzyme active center.

Adenosine Monophosphate↗

A neutral water-soluble broadening agent for spin-label studies.

Cr(maltolate)3 is proposed as a neutral water-soluble reagent for the broadening of accessible nitroxyl spin labels or spin probes in biological experiments. For situations in which the molecular charge is important, it supplements Cr(oxalate)3(3-), which is somewhat more effective on a molar basis. The interaction of the two reagents with spin-labeled creatine kinase is an example of a case in which the charge of the broadening agent is important.

Animals↗

Electron spin resonance studies of spin-labeled mammalian cells by detection of surface-membrane signals.

Lipid-soluble spin labels were incorporated into human lymphocytes and mouse L-cells and the resulting electron spin resonance spectra were compared with spectra obtained from similarly labeled human erythrocytes. Spin labels were found in all subcellular fractions of the nucleated cells that contained membranes. Spinlabeled cells remained viable and capable of replicating in vitro. Electron spin resonance signals from spin-labeled nucleated cells underwent a time- and temperature-dependent decay that was reversed by bathing the cells in K(3)Fe(CN)(6). The demonstration of a relative cell impermeability to ferricyanide, as measured by both colorimetric and radioisotopic label methods, indicated that only spin-labeled molecules in the surface membrane were reactivated when ferricyanide was added to spin-labeled cells after the electron spin resonance signal had decayed.

Androstanes↗

A new bifunctional spin-label suitable for saturation-transfer EPR studies of protein rotational motion.

A new bifunctional spin-label (BSL) has been synthesized that can be immobilized on the surface of proteins, allowing measurement of rotational motion of proteins by saturation-transfer electron paramagnetic resonance (STEPR). The spin-label contains a photoactivatable azido moiety, a cleavable disulfide, and a nitroxide spin with restricted mobility relative to the rest of the label. The label reacts with surface lysine residues modified with beta-mercaptopropionate. Bifunctional attachment is achieved by photoactivation of the azido group. Any spin-label that remains monofunctionally attached after photolysis is removed by reduction of the disulfide. Only bifunctionally attached BSL remains on the protein. Hemoglobin was used to test the utility of the BSL in STEPR by comparison with hemoglobin modified with maleimide spin-label (MSL), a commonly used standard for the STEPR technique. MSL is a monofunctional spin-label which is fortuitously immobilized by local protein structure within hemoglobin. The BSL labeling of hemoglobin did not significantly affect the quaternary structure of hemoglobin as determined by gel filtration chromatography. The conventional EPR spectra of the mono- and bifunctionally attached BSL-hemoglobin were similar to the MSL-hemoglobin spectrum, indicating that both forms of BSL were rigidly bound to hemoglobin. In contrast, the spectrum obtained by reaction of modified hemoglobin lysine residues with MSL indicated that these labels were highly mobile. The monofunctionally attached BSL was mobilized upon octyl glucoside addition whereas bifunctionally attached BSL was only slightly mobilized, suggesting that hydrophobic interactions immobilize the monofunctionally attached label on hemoglobin. The response of STEPR spectra of mono- and bifunctionally attached BSL-hemoglobin to changes in hemoglobin rotational correlation time was similar to the MSL-hemoglobin over the range of 10(-5)-10(-3) s. The spectra of bifunctionally attached BSL indicated slightly less motion than corresponding spectra for MSL or monofunctionally attached BSL. The new BSL is a good reporter of protein rotation and does not require unique protein structures for its immobilization on the protein. Thus, the BSL should be more generally applicable for STEPR studies of membrane protein rotation than existing monofunctional spin-labels.

Cross-Linking Reagents↗

Interaction between cytosolic monoamine oxidase and spin-labeled amphetamine and its modification by clorgyline and pargyline.

Interactions between a monoamine oxidase (monoamine: oxygen oxidoreductase deaminating, EC 1.4.3.4) obtained from rat liver cytosol by high speed centrifugation and a biologically active, spin labeled analog of amphetamine have been analyzed. The acetylenic monoamine oxidase inhibitors, pargyline and clorgyline, have been used to modulate the binding of spin labeled amphetamine. Broadening of electron spin resonance lines induced by immobilization of the probe on binding has been used to determine the concentration of bound probe. Pargyline was found to inhibit binding of spin labeled amphetamine by cytosolic monoamine oxidase. Bound spin labeled amphetamine was also displaceable by pargyline. In contrast, clorgyline enhanced the binding of spin labeled amphetamine to the cytosolic monoamine oxidase preparation. Inhibition or enhancement of amphetamine binding was very rapid and occurred during the reversible stage of interaction between the enzyme and the acetylenic compounds.

Amphetamine↗

Microsecond rotational dynamics of spin-labeled myosin regulatory light chain induced by relaxation and contraction of scallop muscle.

We have used saturation transfer electron paramagnetic resonance (ST-EPR) to study the rotational dynamics of spin-labeled regulatory light chain (RLC) in scallop (Placopecten magellanicus) muscle fibers. The single cysteine (Cys 51) in isolated clam (Mercenaria) RLC was labeled with an indanedione spin label (InVSL). RLC was completely and specifically extracted from scallop striated muscle fibers, eliminating the Ca sensitivity of ATPase activity and isometric force, which were both completely restored by stoichiometric incorporation of labeled RLC. The EPR spectrum of the isolated RLC revealed nanosecond rotational motions within the RLC, which were completely eliminated when the labeled RLC was bound to myosin heads in myofibrils or fibers in rigor. This is the most strongly immobilized RLC-bound probe reported to date and thus offers the most reliable detection of the overall rotational motion of the LC domain. Conventional EPR spectra of oriented fibers indicated essentially complete probe disorder, independent of ATP and Ca, eliminating orientational dependence and thus making this probe ideal for unambiguous measurement of microsecond rotational motions of the LC domain by ST-EPR. ST-EPR spectra of fibers in rigor indicated an effective rotational correlation time (taureff) of 140 +/- 5 microseconds, similar to that observed for the same spin label bound to the catalytic domain. Relaxation by ATP induced microsecond rotational motion (taureff = 70 +/- 4 microseconds), and this motion was slightly slower upon Ca activation of isometric contraction (taureff = 100 +/- 5 microseconds). These motions in relaxation and contraction are similar to, but slower than, the motions previously reported for the same spin label bound to the catalytic domain. These results support a model for force generation involving rotational motion of the LC domain relative to the catalytic domain and dynamic disorder-to-order transitions in both domains.

Animals↗

Spin label translational diffusion in solid tristearin.

Translational diffusion of the intermediate chain length spin label 7N14 has been detected and studied in a lipid environment which is in the bulk solid state. Under favorable circumstances this can occur at temperatures as much as 50 degrees C below the optical melting point. Translational diffusion allows 7N14 molecules to coalesce into impurity pools of high spin label concentration. Two other spin labels, 2N3 and 14N27, do not show a tendency to form such impurity pools. While 2N3 undergoes rapid tumbling at temperatures far below the melting point of the tristearin matrix, the molecules remain in an isolated state with no evidence of spin exchange. 14N27 is restricted in rotational motion in the solid matrix and also does not form impurity pools.

Animals↗

A new membrane probing steroidal spin label: synthesis and applications.

The applicability of a new steroidal spin label, 3-oxo-androstan-17 beta-yl-(2",2",6",6"-tetramethyl-N-oxyl) piperidyl butan-1',4'-dioate, in studying the phase transition properties of model membrane L-alpha-dipalmitoyl phosphatidyl choline (DPPC) in the presence and absence of drugs has been explored. Its synthesis and characterization has been described herein. Besides, the localization of this spin label in lipid liposomes has been studied using electron spin resonance (ESR), differential scanning calorimetry (DSC) and 1H and 31P NMR spectroscopic techniques. The label has also been used to study the permeability of epinephrine into membrane. The results show that the spin label has a good potential as a spin probe in the study of biomembranes.

1,2-Dipalmitoylphosphatidylcholine↗

[Determining the motility of glycoprotein oligosaccharides from lymphocyte membranes using the spin label method].

Splenocyte glycoproteins solubilized by papain were purified on lectyl-lectin Sepharose 4B. Glycoproteins eluted from lectin were spin-labeled at carbohydrates. Quantitative evaluation of ESR spectra of spin-labeled glycoproteins pointed to strong restriction of reorientation of the spin label bound to oligosaccharides. Calculated correlation time of relaxing volume tagged with the spin label was equal to the molecular weight about 6000-7000 dalton. This value suggests the existence of flexibility of the glycoproteins studied.

Animals↗

ADP-induced changes in ordering of spin-labelled myosin heads in muscle fibres.

Rotational dynamics and ordering of myosin heads in glycerinated skeletal muscle fibres were studied using an isothiocyanate-based spin label attached to the fast-reacting thiol sites of myosin and were compared with data obtained for maleimide and iodoacetamide spin labels attached to the same sites. The ordering of probe molecules on the millisecond time scale in the rigor state, at sarcomere length 2.2-2.3 +/- 0.1 microns, was static. Isothiocyanate probe molecules showed greater mobility; the segment holding the label rotated in the microsecond time range. In the saturation transfer EPR time domain, MgADP did not produce a significant change in the mobility of spin labels. The spectra of isothiocyanate spin-labelled fibres were analyzed in terms of two narrow distributions with mean angles of 75 degrees and 56 degrees. In the rigor state, the fractions represented approximately 76% and 24% of the total EPR absorbance. In the presence of MgADP, the conventional EPR spectra showed large changes in the ordering of isothiocyanate probe molecules towards a new distribution, the population with a theta value of 56% increased from 24% to 71% at the expense of the 75% population with no change in the mean angles of the distributions. In the case of maleimide and iodoacetamide spin-labelled fibres, however, the effect of MgADP on the probe angular distribution was small.

Adenosine Diphosphate↗

Membrane orientation and position of the C2 domain from cPLA2 by site-directed spin labeling.

The C2 domain is a ubiquitous Ca(2+)-binding motif that triggers the membrane docking of many key signaling proteins during intracellular Ca(2+) signals. Site-directed spin labeling was carried out on the C2 domain of cytosolic phospholipase A(2) in order to determine the depth of penetration and orientation of the domain at the membrane interface. Membrane depth parameters, Phi, were obtained by EPR spectroscopy for a series of selectively spin-labeled C2 domain cysteine mutants, and for spin-labeled lipids and spin-labeled bacteriorhodopsin cysteine mutants. Values of Phi were combined with several other constraints, including the solution NMR structure, to generate a model for the position of the C2 domain at the membrane interface. This modeling yielded an empirical expression for Phi, which for the first time defines its behavior from the bulk aqueous phase to the center of the lipid bilayer. In this model, the backbones of both the first and third Ca(2+)-binding loops are inserted approximately 10 A into the bilayer, with residues inserted as deep as 15 A. The backbone of the second Ca(2+)-binding loop is positioned near the lipid phosphate, and the two beta-sheets of the C2 domain are oriented so that the individual strands make angles of 30-45 degrees with respect to the bilayer surface. Upon membrane docking, spin labels in the Ca(2+)-binding loops exhibit decreases in local motion, suggesting either changes in tertiary contacts due to protein conformational changes and/or interactions with lipid.

Calcium-Binding Proteins↗

Interaction of spin-labeled nicotinamide adenine dinucleotide phosphate with chicken liver fatty acid synthase.

The spatial relationships between the four reduced nicotinamide adenine dinucleotide phosphate (NADPH) binding sites on chicken liver fatty acid synthase were explored with electron paramagnetic resonance (EPR) and spin-labeled analogues of NADP+. The analogues were prepared by reaction of NADP+ with 2,2,5,5-tetramethyl-1-oxy-3-pyrroline-3-carboxylic acid, with 1,1'-carbonyldiimidazole as the coupling reagent. Several esterification products were characterized, and the interaction of the N3' ester of NADP+ with the enzyme was examined in detail. Both 1H13, 14N and 2H13, 15N spin-labels were used: the EPR spectrum was simpler, and the sensitivity greater, for the latter. The spin-labeled NADP+ is a competitive inhibitor of NADPH in fatty acid synthesis, and an EPR titration of the enzyme with the modified NADP+ indicates four identical binding sites per enzyme molecule with a dissociation constant of 124 microM in 0.1 M potassium phosphate and 1 mM ethylenediaminetetraacetic acid (pH 7.0) at 25 degrees C. The EPR spectra indicate the bound spin-label is immobilized relative to the unbound probe. No evidence for electron-electron interactions between bound spin-labels was found with the native enzyme, the enzyme dissociated into monomers, or the enzyme with the enoyl reductase sites blocked by labeling the enzyme with pyridoxal 5'-phosphate. Furthermore, the EPR spectrum of bound ligand was the same in all cases. This indicates that the bound spin-labels are at least 15 A apart, that the environment of the spin-label at all sites is similar, and that the environment is not altered by major structural changes in the enzyme.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Synthesis of a new phosphatidylserine spin-label and calcium-induced lateral phase separation in phosphatidylserine-phosphatidylcholine membranes.

A new phosphatidylserine spin label with nitroxide stearate attached at the 2 position has been synthesized by the reaction of spin-labeled CDP-diglyceride with L-serine under the catalytic action of phosphatidylserine synthetase. Some structural properties of pure phosphatidylserine (PS) and binary PS-phosphatidylcholine (PC) membranes were studied with the spin label. PS membrane became solidified on lowering solution pH, 50% solidification being attained at pH 3.5. The membrane was also solidified by addition of Ca-2+. The effect of Ba-2+,Sr-2+, and Mg-2+ was smaller than that of Ca-2+. The calcium-induced lateral phase separation in the binary membrane was studied from the side of the calcium-receiving lipid. The results confirmed and extended our previous conclusion drawn with PC spin label. The phase diagram of the binary membrane in the presence of Ca-2+ was determined. Not all PS molecules were aggregated to form the solid patches but some remained dissolved in the fluid PC matrix. The fluid PS fraction was larger for the membranes containing more PC. The membrane with 10% PS still had a significant fraction of solid phase. The rate of calcium-induced aggregation was greatly dependent on the PS content. The aggregation was almost complete within 5 min in the membrane containing 67% PS, while it was still proceeding after several hours in the membrane with 20% PS. The rate-limiting step was suggested to be in the formation of "stable" nuclei consisting of larger aggregates. The possible biological significance of the ionotropic phase separation was discussed whereby a transient density fluctuation was emphasized.

Barium↗