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Biomedical subjects

R J Mehlhorn

Publications and source records attributed to R J Mehlhorn.

At least 19 recordsLinked to original sources

Increased vulnerability of human erythrocytes to hydroperoxide damage after exposure to cigarette smoke or 1-chloro-2,4-dinitrobenzene in vitro.

Glutathione depletion, a major effect of cigarette smoke on biological tissues exposed to high concentrations of smoke, substantially slowed the consumption of tert-butyl hydroperoxide (tBH) in human erythrocytes in vitro, as shown by electron spin resonance (ESR) analyses of the rate of disappearance of extracellular tBH. Glutathione depletion by the reagent 1-chloro-2,4-dinitrobenzene induced a structural alteration of intracellular hemoglobin by tBH, which was inferred from an increase in hydrophobicity of erythrocyte proteins. Protein hydrophobicity was analyzed with a new ESR assay comprising detection of an increased binding of both anionic and cationic amphiphilic paramagnetic probes in membrane-depleted hemolysates. An increased affinity of oxidant-damaged proteins for amphiphilic probes was also observed in myoglobin and in protein fractions of erythrocytes treated with tBH subsequent to hemolysis. Smoke exposure enhanced the formation of reactive free radicals from tBH by chelated iron and ascorbate. Reactive radical formation, as monitored by spin-trapping methods, was substantially prolonged in erythrocyte suspensions that had been exposed to cigarette smoke. The results of this study suggest that the susceptibility of cells to peroxide-mediated damage, including damage associated with iron-mediated free radical production, is increased after exposure to high concentrations of cigarette smoke.

Carboxyhemoglobin↗

Loss of glutathione, ascorbate recycling, and free radical scavenging in human erythrocytes exposed to filtered cigarette smoke.

Exposure of human erythrocytes to filtered cigarette smoke in vitro inhibited their capacity to reduce dehydroascorbic acid (ascorbate recycling activity). Glucose uptake was not affected, implying that dehydroascorbic acid transport was not inhibited by the smoke treatment. The intracellular reduction of cationic nitroxide free radicals, which provides a measure of ascorbate recycling, was also inhibited by cigarette smoke. A major factor in the inhibition of free radical reduction was glutathione depletion. However, glutathione depletion alone could not account for the inhibition of free radical reduction because a restoration of the glutathione pool in hemolyzed cells only partially restored free radical reduction activity. Another factor inhibiting free radical reduction was a lowering of pH, which was attributed mainly to the uptake of CO2 and was reversible by restoring the physiological pH. Exogenous glutathione spared both intracellular glutathione and free radical reduction activity. The rate of depletion of intracellular glutathione was similar to that of extracellular glutathione, indicating that the erythrocyte membrane did not significantly attenuate thiol-reactive species in smoke. Protein thiols were also depleted by cigarette smoke, but to a much lesser extent than was glutathione. Ascorbate was relatively unaffected by cigarette smoke; significant intracellular ascorbate levels remained after glutathione was barely detectable. Autooxidizable reducing agents, capable of reducing both reduced piperidinyl (Tempo) and pyrrolidinyl (Proxyl) nitroxides partitioned from filtered cigarette smoke into aqueous solutions. Attempts to detect cigarette smoke-derived oxidants in buffer solutions or in cell suspensions with a prereduced Tempo nitroxide, whose oxidation properties resemble those of ascorbate, were unsuccessful. The results of this study suggest that chemical modification of glutathione is a major damage mechanism of filtered cigarette smoke, whereas free radical oxidations are relatively insignificant.

Ascorbic Acid↗

New amino-nitroxide spin labels.

Stable free mono- and diradicals containing reactive primary or secondary amino groups in the side-chain have been synthesized by transesterification of amino-substituted esters with paramagnetic alcohols or from spin-labeled acid derivatives and amines. In the second approach the new radical 18 (1-oxyl-3-(2-bromoethoxycarbonyl)-2,2,5,5-tetramethylpyrroline) is proposed as an efficient alkylating species. The nitroxides described are pH-sensitive spin probes and spin labels potentially useful for a diversity of ESR applications in chemistry and biology. New spin-labeled tyramine 16 (N-(1-oxyl-3-carbonyl-2,2,5,5-tetramethyl-pyrroline)tyramine) was successfully employed in a novel assay of protein oxidative damage.

Cyclic N-Oxides↗

Cytostatic effects of horseradish and thyroid peroxidase derived free radicals.

An otherwise noncytostatic flux of H2O2 from glucose and glucose oxidase became cytostatic to cultured Chinese Hamster Ovary (CHO) cells when horseradish or thyroid peroxidase was added to the culture medium. Electron spin resonance (ESR) measurements showed that one or more factors present in the culture medium promote the one-electron oxidation of a reduced nitroxide or glutathione in an H2O2/peroxidase-dependent process. Moreover, a reduced nitroxide conferred significant protection against the cytostatic effect of H2O2/peroxidase. Cytostatic effects were not only seen in the presence of the active H2O2/peroxidase system, but also in media which had been preexposed to H2O2/peroxidase but no longer contained an active H2O2 generating system. It is suggested that peroxidases oxidize one or more factors in tissue culture media to free radicals, which react with nearby components of cells or form toxic products, causing growth inhibition. If similar free radical precursors are present in tissue fluids, some of the toxicity of H2O2 in vivo may be due to peroxidase-mediated endogenous free radical generation.

Animals↗

Hydroxyl and alkoxyl radical production by oxidation products of metmyoglobin.

The one-electron oxidation of a reduced nitroxide (2,2,6,6-tetramethyl-1,4-dihydroxypiperidine, TOLH), detected by ESR, was used to resolve and quantify oxidants arising from the reaction of heme proteins with hydroperoxides, including chelatable iron released subsequent to oxidative cleavage of the porphyrin ring. Released iron was distinguished from protein radicals and ferryl heme by analyzing TOLH oxidation in the presence of different chelating agents. Metmyoglobin (metMb) treatment with one mole of H2O2 per mole of heme produced protein-bound oxidants that oxidized about two molecules of TOLH per heme. Some of the oxidizing species responsible for TOLH oxidation were highly persistent (t1/2 for the decay was 3 hrs at 25 degrees C). Iron release, metMb bleaching and the catalysis of Fenton-type chemistry were compared in metMb solutions treated with tert-butyl hydroperoxide (tBH). Iron release required about five-fold higher hydroperoxide concentrations than did metMb bleaching. Alkoxyl and methyl radical production was catalyzed by iron released from metMb but not by protein-bound iron in oxidized metMb solutions treated with tBH and ascorbic acid. The results suggest that ascorbate-mediated hydroxyl and alkoxyl radical production by hydroperoxide-treated metMb is due to released iron and that the protein-bound non-heme iron that arises during bleaching is at most a weak Fenton reagent.

Alcohols↗

Electron spin resonance study of peroxidase activity and kinetics.

An electron spin resonance (ESR) assay has been developed for peroxidase activity. The assay measures the formation of the paramagnetic nitroxide Tempol from the oxidation of its hydroxylamine derivative (TOLH) by short-lived radicals produced by peroxidase cycle intermediates, Compounds I and II. Using phenol as a peroxidase electron donor, the ESR approach is suitable for measurements of peroxidase activity ( > or = 0.003 U/ml) and micromolar quantities of H2O2 in sample sizes as small as 2 microliters. In addition, the ESR method can be used to continuously monitor activity in cell suspensions and other media that are susceptible to optical artifacts. The high membrane permeability of TOLH also makes it possible to estimate peroxidase activity in membrane-enclosed compartments, provided that TOLH oxidation rates can be stimulated with exogenous peroxidase reductants, e.g., phenol. Analysis of TOLH oxidation rates under conditions of low electron donor concentrations and high concentrations of H2O2 also shows clear indications of substrate-dependent inhibition and increased catalytic activity. Computer simulations indicate that the results obtained are consistent with the peroxidase reaction scheme proposed by Kohler et al. (1988, Arch. Biochem. Biophys. 264, 438-449) modified to correct for a nitroxide dependent stimulation of peroxidase catalytic activity.

Ascorbic Acid↗

Protein sulfhydryls are protected from irreversible oxidation by conversion to mixed disulfides.

Protein mixed thioselenides formed by reaction of sarcoplasmic reticulum (SR) with diselenide biradical spin labels were quantified by ESR. Whereas the reaction of SR membranes with the diselenide spin label led to a large ESR signal of the unbound monoselenide at equilibrium, treatment of the reaction mixture with a few millimolar hydrogen peroxide converted all of the nitroxides to protein-bound thioselenides. This technique of spin-labeling protein thiols avoids the need to remove unreacted spin labels. The bound spin labels were removable by reduction with excess mercaptoethanol, indicating a specific and reversible labeling of protein thiols. SR that had been extensively labeled with the diselenide spin label was resistant to ATPase inactivation by potent oxidants that arise when myoglobin reacts with hydroperoxides. Unmodified SR lost all activity within 10 min of exposure to either 1 mM tert-butyl hydroperoxide in the presence of 200 microM equine myoglobin or to 100 mM hydrogen peroxide in the absence of myoglobin. In both cases the loss of activity could not be reversed by subsequent treatment with mercaptoethanol. On the other hand, membranes that had been extensively treated with the diselenide spin label and were then subjected to these peroxide treatments were fully active after mercaptoethanol-mediated cleavage of the thioselenides. ESR analysis of spin-labeled SR showed no detectable oxidative cleavage of the thioselenide bonds. Sodium dodecyl sulfate gel electrophoresis showed that peroxide-mediated crosslinking of ATPase observed in unmodified SR membranes did not occur in the diselenide-modified SR membranes. Only limited protection was observed when SR pretreated with glutathione disulfide was incubated with hydroperoxides. In this case, however, the degree of protection was greatly increased when the reaction with glutathione disulfide was carried out in the presence of the supernatant of centrifuged rat liver homogenate, consistent with an acceleration of mixed disulfide formation by a factor tentatively identified as thiol transferase. It is concluded that conversion of protein thiol residues to either thioselenides or mixed disulfides confers protection against irreversible peroxide-dependent oxidation. We suggest that mixed disulfide formation by thiol transferase activity may help protect protein thiols from irreversible oxidation by heme-activated hydroperoxides.

Adenosine Triphosphatases↗

Nitroxide-stimulated H2O2 decomposition by peroxidases and pseudoperoxidases.

Nitroxide free radicals interact with Hb/metHb, Mb/metMb and with peroxidases/phenols to induce a catalase-like conversion of H2O2 to O2 (catalatic activity), without being substantially consumed in the process. The mechanism of this reaction is postulated to involve a one-electron oxidation of the nitroxide to the immonium oxene, which then reacts further to release oxygen and the nitroxide. An involvement of the immonium oxene in the reaction mechanism is consistent with ferryl heme reduction by nitroxides and a detection of the reduced nitroxide when the reaction mixture is supplemented with the two-electron reductant sodium borohydride. The nitroxide-induced catalatic activity is completely inhibited when the reaction mixture is supplemented with glutathione. Nitroxides suppress free radical formation by hydroperoxide-activated heme proteins, as inferred from their inhibition of the spin-trapping of glutathionyl radicals. H2O2 decomposition and a suppression of reactive free radical formation by heme proteins appears to be an antioxidant activity of nitroxides, which is distinct from their previously reported superoxide dismutating activity and which may be a factor in their protective action in models of cardiac reperfusion injury.

Ascorbic Acid↗

Ascorbate- and dehydroascorbic acid-mediated reduction of free radicals in the human erythrocyte.

Nitroxides were used as models of persistent free radicals to study the antioxidant function of ascorbic acid in the human erythrocyte. It was concluded that: 1) ascorbate and other reductant(s) derived from dehydroascorbic acid (DHA) in the presence of thiols are the only significant reducing agents for nitroxides, 2) glutathione and DHA reduce nitroxides by a process that cannot be inhibited by ascorbic acid oxidase, 3) erythrocytes can be depleted of ascorbic acid by exhaustive washing in the presence of membrane-permeable cationic nitroxides such as N,N-dimethylamino-Tempo, 4) ascorbate-depleted cells do not reduce nitroxides; however, nitroxide reduction is restored when the cells are incubated with DHA, 5) reduction of nitroxides in ascorbate-depleted, DHA-treated cells is significantly faster than in buffered solutions of DHA and glutathione, 6) several equivalents of nitroxide are reduced relative to the intracellular ascorbate pool, 7) sustained nitroxide reduction is observed even when most of the intracellular ascorbate is oxidized, 8) spin trapping of oxyradicals in tert-butyl hydroperoxide-treated cells is accelerated with ascorbate depletion and inhibited with ascorbate loading, 9) ascorbate can be quantified within intact cells by analyzing the initial reduction rates of membrane-permeable cationic nitroxides, and 10) DHA-stimulated reduction of cationic nitroxides is slower and less extensive in erythrocytes deficient in glucose-6-phosphate dehydrogenase than in normal erythrocytes.

Ascorbic Acid↗

Anti-human immunodeficiency virus (HIV) drug HOE/BAY946 increases membrane hydrophobicity of human lymphocytes and specifically suppresses HIV-protein synthesis.

The polysulfated polyxylan HOE/BAY946, which has been tested in two pilot studies in ARC/AIDS patients and in asymptomatic HIV carries in Germany, was believed to act by inhibiting virus attachment to the cell. However, the drug was also found to reduce the amount of HIV particles released from infected peripheral blood mononuclear cells (PBMC) in vitro. Furthermore, preincubation of PBMC with the drug led to a partial inhibition of a following HIV infection, suggesting that the drug also affects virus entry. Electron Paramagnetic Resonance (EPR) measurements on uninfected human lymphocytes using 5-proxyl-nonane as spin label demonstrated smaller hyperfine coupling constant (aN) values in the presence of HOE/BAY946 or dextran sulfate 5000. Accordingly, h-1p/h-1H ratios were decreased, indicating increased plasma membrane hydrophobicity and a membrane-stabilizing effect of the drugs. Culture of the chronically HIV-infected monocytic cell line U937/HIV-2D194 in the presence of HOE/BAY946 specifically and drastically reduced the release of virions and the intracellular synthesis of viral proteins as determined by radioimmunoprecipitation and reverse transcriptase assays. In conclusion, although the EPR studies showed a physico-chemical effect on membrane polarity, HOE/BAY946 and dextran sulfate clearly affect processes beyond the cell membrane. Thus, in contrast to previous reports suggesting that polysulfated sugars affect HIV only by inhibiting virus binding to uninfected cells, they clearly inhibit HIV in infected cells as well and appear to have a pleiotropic mode of action. Such drugs may be less likely to result in viral resistance after prolonged application than substances acting only on one step in the life cycle of the virus.

Antiviral Agents↗

ESR measurement of time-dependent and equilibrium volumes in red cells.

Red cell water volumes were measured using ESR methods during transient osmotic perturbation, and under equilibrium conditions. Cell water contents were determined using the spin label Tempone (2,2,6,6-tetramethyl piperidine-N-oxyl) and the membrane impermeable quencher potassium chromium oxalate. With appropriate corrections for intracellular viscosity and changes in cavity sensitivity, equilibrium cell water measured both by electron spin resonance (ESR) and wet minus dry weight methods gave excellent agreement in solutions from 243-907 mOsm. Intracellular viscosities determined from the Tempone correlation times in the same cells gave values ranging from 9-47 centipoise at 21 degrees C. Osmotically induced transient volume changes were measured using Tempone and an ESR stopped-flow configuration. The Tempone response time was estimated at 17 msec compared to 250-350 msec for normal water relaxations. Nonlinear least square solutions to the Kedem-Katchalsky equations including a correction for the finite Tempone permeability gave 0.029 and 0.030 cm/sec for the osmotic permeability of RBCs in swell and shrink experiments, respectively. In stopped-flow experiments accurate water flux data are obtained very soon after challenging cells and do not require baseline subtractions. These results represent significant improvements over conventional light scattering techniques which necessitate corrections for long lasting optical artifacts (200-300 msec), and baseline drifts.

Electron Spin Resonance Spectroscopy↗

A photochemical system for generating free radicals: superoxide, phenoxyl, ferryl and methyl.

The photosensitizer flavin mononucleotide (FMN), in conjunction with the reducing agents diethylenetriaminepentaacetic acid (DTPA), hydrazine and hydroxylamines derived from nitroxides, generates superoxide radicals in a strictly light-dependent reaction in aerobic solution. Addition of superoxide dismutase (SOD) converts this system to a hydrogen peroxide generator. In the presence of horseradish peroxidase the latter system becomes a phenoxyl radical generator with appropriate phenolic substrates. Under anaerobic conditions FMN, hydrogen peroxide and an iron chelate generate ferryl and when this system is combined with dimethylsulfoxide, methyl radicals are produced. All the radicals can be generated with little contamination from other radicals, in high yields and the reaction can be terminated immediately upon cessation of illumination. Useful applications of this photochemical system include ESR studies of transient free radical species.

Chemical Phenomena↗

Tocopheroxyl radical persistence and tocopherol consumption in liposomes and in vitamin E-enriched rat liver mitochondria and microsomes.

Substantial loading of rat liver mitochondrial and microsomal membranes with D-alpha-tocopherol was achieved by dietary supplementation with no adverse effects of this loading being apparent, e.g. on treadmill exercise endurance. The tocopheroxyl radical was readily detected by ESR in the enriched microsomes and mitochondria. Continuous enzymatic oxidation with horseradish peroxidase and a hydrophilic phenol, to favor selective oxidation of tocopherol without the involvement of lipid peroxidation, allowed the tocopheroxyl radical to be observed for up to 1 h in liposomes of dioleoylphosphatidylcholine and for about 15 min in the subcellular membranes. Total alpha-tocopherol decreased throughout this period, but a significant residual fraction remained after all the ESR signal of tocopheroxyl had disappeared. Decay kinetics of the tocopheroxyl radical ESR signal produced by a burst of intense UV irradiation consisted of a rapid initial phase and a slower exponential decay. A more narrow and more persistent ESR signal, not yet chemically identified, was observed after the tocopheroxyl radical had disappeared under prolonged oxidation. Ascorbic acid prevented formation of the tocopheroxyl radical until the ascorbyl radical ESR signal had decayed, whereas uric acid, up to saturating concentration in phosphate buffer, had no effect.

Animals↗

Enhancement by tetraphenylboron of the interaction of the 1-methyl-4-phenylpyridinium ion (MPP+) with mitochondria.

Inhibition of mitochondrial energy production by MPP+ may be the key step in chemically-induced Parkinson's disease. Tetraphenylboron (TPB-) markedly enhances the effect of MPP+. Inhibition of respiration and uptake of MPP+ are accelerated, the former by up to two orders of magnitude. TPB increases the final concentration of MPP+ in the matrix by 2-3 fold, insufficient to explain the rapid inhibition of respiration. TPB- lowers the membrane surface potential by only about 20%, but increases the partitioning of MPP+ into organic solvent by one order of magnitude. TPB- also enhances the effect of MPP+ on inverted membranes, reducing the I50 by an order of magnitude. We suggest that TPB- acts by ion pairing with MPP+ to facilitate penetration into mitochondria as well as access to a hydrophobic inhibition site on NADH dehydrogenase.

1-Methyl-4-phenylpyridinium↗

Mitochondria and microsomal membranes have a free radical reductase activity that prevents chromanoxyl radical accumulation.

Enzyme-dependent mechanisms which prevent accumulation of chromanoxyl radicals derived from the vitamin E analogue, 2,2,5,7,8-pentamethyl-6-hydroxycromane (PMC), were characterized in rat liver microsomal and mitochondrial membranes. The free radical oxidation product of PMC (chromanoxyl radical) was generated in membranes using either photochemical (uv light) or enzymatic (lipoxygenase and arachidonic acid) methods and detected by ESR. Substrates (NADH or NADPH) prevented accumulation of chromanoxyl radicals until the substrate was fully consumed. In microsomes, reduced glutathione increased the efficacy of NADPH in preventing the accumulation of the chromanoxyl radical, but was without effect in the absence of NADPH. Ascorbate also prevented accumulation of the chromanoxyl radical. It is concluded that rat liver microsomes and mitochondria have both enzymatic and non-enzymatic mechanisms for reducing chromanoxyl radicals.

Animals↗

Amine and carboxylate spin probe permeability in red cells.

Permeabilities for a homologous series of amine and carboxylate nitroxide spin probes were measured in human red blood cells by an electron paramagnetic resonance (EPR) method. Permeabilities determined in this study are much lower than would be predicted for a sheet of bulk hydrocarbon and the polarity of the rate-limiting region is shown to be greater than bulk hydrocarbon. This suggests that the rate-limiting region for permeation of these nonelectrolytes is somewhere in the membrane periphery rather than in the center of the membrane. The red cell membrane does not discriminate between these probes on the basis of molecular volume, as might be predicted by a simple free-volume theory of membrane permeation.

Amines↗