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Biomedical subjects

O M Panasenko

Publications and source records attributed to O M Panasenko.

At least 37 records · Page 2Linked to original sources

Oxidative modification and nitration of human low-density lipoproteins by the reaction of hypochlorous acid with nitrite.

Hypochlorous acid (HOCl) reacts with nitrite (NO2-) at a molar ratio of 1:1 yielding an equimolar amount of nitrate. The rate of this reaction follows the dissociation of hypochlorous acid and decreases with the increasing of pH from 4 to 10 as assayed by stopped-flow analysis, suggesting that HOCl, not hypochlorite, is the reactant. The second-order rate constant at pH 7.2, 25 degrees C, was estimated as (7.4 +/- 1.3) x 10(3) M(-1) s(-1), a rate considerably higher than that of the Fenton reaction (42 M(-1) s(-1)). In human low-density lipoproteins (LDL) the reaction led to a loss of beta-carotene and alpha-tocopherol. The NO2-/HOCl mixture initiated lipid peroxidation in LDL, whereas NO2- or HOCl alone had only little effect. When LDL was added immediately after mixing of NO2- with HOCl, no loss of antioxidants or accumulation of lipid peroxidation products was observed, suggesting that a short-lived reactive intermediate, previously postulated as nitryl chloride, is the reactive species. The mixture NO2-/HOCl as well as peroxynitrite led to the formation of 3-nitrotyrosine in LDL as assayed using a monoclonal anti-nitrotyrosine antibody. Furthermore, incubation of J774.2 macrophage-like cells with LDL, pretreated with the NO2-/HOCl mixture, led to increased cellular accumulation of cholesterol. Thus modification of LDL caused by the reaction of nitrite with HOCl contributes to the formation of cholesterol-rich cells, a key feature of the early atherosclerotic lesion.

Animals↗

The mechanism of the hypochlorite-induced lipid peroxidation.

The article reviews data related to the role of exogenic hypochlorite (HOCl/OCl-) and hypochlorite produced by myeloperoxidase catalysis in initiation of lipid peroxidation (LPO) in phospholipid membranes and human blood lipoproteins (LP). It has been shown that HOCl/OCl- promotes free radical lipid oxidation in liposomes and LP that is followed by the formation of LPO products; hydroperoxides, conjugated dienes, TBARS, and fluorescent products. Water soluble reactive substances (.O2-, H2O2, Fe2+) which can be present in the reaction mixture as a dopant are not the source of free radicals and do not participate in HOCl/OCl(-)-induced LPO at the initiation step. The main reaction of HOCl/OCl- with unsaturated lipid is probably the generation of chlorohydrins. However, this reaction is not accompanied by generation of free radicals and LPO. HOCl/OCl- reacts efficiently with TBARS of aldehydic nature. It is likely that the reaction proceeds without the participation of free radicals. Among the compounds of a peroxide nature (hydro-, dialkyl-, diacyl-, alkyl-acyl-peroxide groups and epoxides) only hydroperoxides react with HOCl/OCl-. This reaction is accompanied by the production of free radicals (but not singlet oxygen), probably alkoxyl radicals, which may play a role in the initiation of HOCl/OCl(-)-induced LPO.

Animals↗

Hypochlorite-induced peroxidation of egg yolk phosphatidylcholine is mediated by hydroperoxides.

Using a chemiluminescent method, the consumption of HOCl/OCl- was investigated during interaction with liposomes prepared from dimyristoylphosphatidylcholine (DMPC) or egg yolk phosphatidylcholine (EYPC). The concentration of HOCl/OCl-decreased with time in the suspension of EYPC that contain unsaturated lipids and did not change in DMPC liposome suspensions. HOCl/OCl- was consumed more rapidly in peroxidized EYPC. The amount of double bonds was lowered by 40% in peroxidized liposomes and decreased by approximately one-third under the action of HOCl/OCl- in both native and peroxidized EYPC samples. Second-order rate constants for the interaction between HOCl and phospholipid double bonds of 0.50 M-1 s-1 were calculated for native EYPC on basis of the consumption of HOCl/OCl- or from the decrease in concentration of double bonds. In peroxidized EYPC this reaction constant was similar as determined following changes in double bonds. It is concluded that the consumption of HOCl/OCl- increased in peroxidized liposomes due to additional reactions with lipid peroxidation products. tert-Butyl hydroperoxide and cumene hydroperoxide, or organic peroxides or epoxides (cis-9,10-epoxystearic acid; cholesterol-5 alpha,6 alpha-epoxide; trans-2,3-epoxy-butane; cis-2,3-epoxy-butane) were incorporated into liposomes and investigated in respect to their ability (1) to increase the consumption of HOCl/OCl- in DMPC liposomes, (2) to generate a non-enhanced chemiluminescence with HOCl/OCl- and (3) to evoke an accumulation of lipid peroxidation products (TBARS) in EYPC liposomes in the absence and presence of NaOCl. None of peroxides or epoxides tested showed any effect on the consumption of HOCl/OCl- or the generation of chemiluminescence. Nor increase of TBARS both in the absence or presence of HOCl/OCl-. In contrast, tert-butyl hydroperoxide and cumene hydroperoxide increased the consumption of HOCl/OCl- in DMPC liposomes and mediated a higher accumulation of TBARS in EYPC liposomes in the presence of HOCl/OCL- over the control. These data suggest that lipid peroxidation in EYPC can be initiated by the reaction of HOCl/OCL- with organic hydroperoxides.

Animals↗

Effect of sodium chloride, chlorite, and perchlorate on the hypochlorite-induced peroxidation of phospholipid liposomes.

The abilities of sodium hypochlorite (NaClO), chlorite (NaClO2), chlorate (NaClO3), and perchlorate (NaClO4) to initiate lipid peroxidation (LP) in liposomes formed from unsaturated phosphatidylcholine were compared. It was shown that only NaClO induced an intensive accumulation of LP products (thiobarbituric acid-reactive substances and diene conjugates) in the liposomes as a result of their co-incubation. The other oxochlorates produced no similar effects and did not affect the hypochlorite-induced LP. This indicates that the observed hypochlorite-induced LP does not result from the presence of chlorite, chlorate, or perchlorate anion admixtures in the medium.

Animals↗

Hypochlorite reacts with an organic hydroperoxide forming free radicals, but not singlet oxygen, and thus initiates lipid peroxidation.

The mechanism of the reaction of hypochlorite with t-butyl hydroperoxide as a model organic hydroperoxide was studied. The reaction produces chemiluminescence with rate constant 13 +/- 2 mM-1.sec-1. The chemiluminescence of this reaction was compared with that of the hypochlorite reaction with H2O2 where singlet oxygen (1O2) is formed. In the hypochlorite reaction with H2O2, the effect of hypochlorite concentration on the integrated chemiluminescence intensity is quadratic: a red filter with transmission > 600 nm did not significantly decrease the chemiluminescence intensity: substitution of D2O for H2O increased the luminescence intensity 10-fold; infrared monomol emission was observed at 1270 nm. These results confirm the formation of 1O2 during the hypochlorite reaction with H2O2. However, when t-butyl hydroperoxide was used instead of H2O2, the concentration effect significantly differed from quadratic, and the red filter decreased the luminescence intensity by approximately 99%; D2O slightly decreased the luminescence intensity. Finally, addition of t-butyl hydroperoxide to hypochlorite was not associated with monomol emission of 1O2 in the infrared region. The data exclude the possibility of singlet oxygen formation in the hypochlorite reaction with the organic hydroperoxide. According to 1H-NMR spectroscopy, di-t-butyl peroxide is the main product of the hypochlorite reaction with t-butyl hydroperoxide; its production can be explained by radical formation, i.e., by generation of t-butyloxy radical. t-Butyl hydroperoxide and cumene hydroperoxide promoted hypochlorite-induced lipid peroxidation of phospholipid liposomes. The free radical scavenger butylated hydroxytoluene completely inhibited this effect. The data suggest that organic hydroperoxides, always present in certain amounts in vivo, may be the intermediates that interact with hypochlorite-forming free radicals which are initiators of lipid peroxidation.

Free Radicals↗

Hypochlorite destroys carotenoids in low density lipoproteins thus decreasing their resistance to peroxidative modification.

The effects of hypochlorite (HOCl/OCl-) on the content of carotenoids (trans-lycopene, 5-cis-lycopene, alpha- and beta-carotene) and oxycarotenoids (lutein, zeaxanthin, trans- and cis-2',3'-anhydrolutein, alpha-and beta-cryptoxanthin) in human blood low-density lipoproteins (LDL) were compared using HPLC. Hypochlorite decreased the content of all the above-mentioned pigments in LDL. However, it was more reactive towards carotenoids rather than to their oxy derivatives. The ability of carotenoids and oxycarotenoids to scavenge HOCl/OCl- decreases in the series: trans-lycopene approximately 5-lycopene > alpha-carotene > beta-carotene > zeaxanthin > alpha-cryptoxanthin > cis-2',3'-anhydrolutein > beta-cryptoxanthin > trans-2',3'-anhydrolutein > lutein. Preincubation of LDL with hypochlorite decreased their resistance to CU(2+)-induced accumulation of dienic conjugates that are produced in the course of lipid peroxidation. The data suggest that hypochlorite-induced destruction of carotenoids in LDL decreases their resistance to oxidative modification, thus promoting the development of early stages of atherosclerosis.

Arteriosclerosis↗

The action of hypochlorous acid on phosphatidylcholine liposomes in dependence on the content of double bonds. Stoichiometry and NMR analysis.

Kinetics of the consumption of hypochlorous acid in its reaction with double bonds of unsaturated phospholipids and fatty acids were measured using luminol chemiluminescence. Stoichiometry ratios between the consumption of HOCl/OCl- and the loss of double bonds vary from 2:1 to 1:1. Highest values were found in DMPC liposomes containing 5 mol% oleic acid or OPPC. With increasing content of double bonds or higher numbers of double bonds in a fatty acid acyl chain due to incorporated unsaturated fatty acids or phospholipids in DMPC liposomes the stoichiometry ratio falls continuously to 1:1. A ratio of about 1:1 was observed in multilamellar and unilamellar liposomes composed of egg yolk phosphatidylcholine. Products of the reaction of oleic acid with hypochlorous acid were analyses by 1H-NMR spectroscopy. Chlorohydrins were formed in both DMPC liposomes containing 5 or 40 mol% oleic acid.

Chemical Phenomena↗

Hypochlorite induces lipid peroxidation in blood lipoproteins and phospholipid liposomes.

The accumulation of lipid peroxidation products reacting with 2-thiobarbituric acid (TBARS) has been observed both in very low density blood lipoprotein (VLDL) and suspensions of liposomes prepared from VLDL phospholipids incubated with hypochlorite. Butylated hydroxytoluene (BHT) completely inhibited TBARS formation at a concentration of 100 microM, at which it decreased the concentration of hypochlorite in the absence of liposomes only by 7%. The formation of lipid peroxidation products in course of the incubation of egg yolk phospholipid liposomes with hypochlorite has been revealed using three methods: (1) measurement of TBARS, (2) measurement of additional amounts of TBARS resulting from the introduction of excess Fe2+ to peroxidized liposomes (delta TBARS), and (3) measurement of the chemiluminescence flash amplitude appeared upon the addition of Fe2+ to the suspension. The results obtained by all these methods were similar: Lipid peroxidation products were accumulated during the first 2 to 3 h of liposome incubation with 100 microM hypochlorite, and the amount of lipid peroxidation products accumulated after incubation was directly proportional to the initial hypochlorite concentration. These data suggest that hypochlorite can initiate lipid peroxidation both in lipoproteins and phospholipid liposomes.

Butylated Hydroxytoluene↗

[Molecular mechanisms of the effects of sodium hypochlorite on thrombocytes and lipoproteins].

Hypochlorite seems to inhibit platelet aggregation in the platelet-rich plasma (PRP) by modifying fibrinogen receptors. The hypochlorite-inactivated isolated platelets are completely repaired by native plasma. Platelet aggregation in PRP is suppressed by hypochlorite by its direct interaction with cells and indirectly due to plasma modification. The indirect action of hypochlorite is a reversible reaction between the platelet active groups and the products of plasma modification. The reaction may involve sulphur-containing groups. The spin-probe method shows that hypochlorite penetrates into the lipid phase of human blood lipoproteins. It initiates lipid peroxidation and causes the disturbance of the lipid structure and the protein please.

Animals↗

[Interaction of hypochlorite with hydroperoxides and other oxidation products of phosphatidylcholine liposomes].

The chemiluminescence in the presence of luminol has been used to measure the amount of hypochlorite and its reduction during the interaction with oxidized and non-oxidized liposomes from egg yolk phosphatidylcholine as well as with organic peroxides (tert-butylhydroperoxide, cumene hydroperoxide, di-tert-butylperoxide, tert-butylperbenzoate, di-benzoylperoxide), and epoxides (cis- and trans-2,3-epoxy-butane, cholesterol-5 alpha,6 alpha-epoxide, and cis-9,10-epoxystearic acid). Since hypochlorite did not react with the saturated phospholipid, dimyristoylphosphatidylcholine (DMPC), and the reduction of double bonds in egg yolk phosphatidylcholine liposomes occurred at the same rate in both oxidized and non-oxidized liposomes, it may be suggested that hypochlorite interacted precisely with LPO products. None of the epoxides tested in this study, similar to di-tert-butylperoxide, tert-butylperbenzoate, di-benzoylperoxide, incorporated into liposomes reacted with hypochlorite. In contrast, tert-butylhydroperoxide and cumene hydroperoxide effectively reacted with it. The data obtained suggest that epoxides, dialkyl-, diacyl-, and alkyl-acyl-peroxides are not involved in hypochlorite-induced LPO. At the same time, organic hydroperoxides commonly present in certain amounts in the biomembrane lipid phase in vivo may play a role lf an intermediate; its interaction with HOCl/OCl- gives rise to free radical formation followed by accumulation of LPO products.

Free Radicals↗

Peroxidation of egg yolk phosphatidylcholine liposomes by hypochlorous acid.

The powerful neutrophil-derived oxidant hypochlorous acid HOCl/OCl- is assumed to contribute to tissue injury in a number of pathological states accompanied by massive accumulation of neutrophils. The production of malondialdehyde to indicate lipid peroxidation was studied in egg yolk phosphatidylcholine liposomes upon treatment with NaOCl as a source for hypochlorous acid. Its accumulation was inhibited by alpha-tocopherol and butylated hydroxytoluene. Singlet oxygen, hydroxyl radicals or superoxide anion radicals derived from direct reactions of hypochlorous acid seem not to be involved in initiation of lipid peroxidation because the malondialdehyde accumulation was unaffected by hydrogen peroxide, catalase, superoxide dismutase, ferrous sulphate or ferric chloride. Double bonds of fatty acid residues seem to be the primary target for NaOCl. Their number is continuously diminished in liposomes (2 mg lipids/ml) after incubation with increasing amounts of NaOCl at 37 degrees C for 40 min as detected by two independent methods (iodine bromide reduction and 1H-NMR spectroscopy). A 1:1 molar ratio between the loss of double bonds and NaOCl added was found only at low NaOCl concentrations. Then double bonds are decreased with a lower efficiency. A continuous increase of lipid peroxidation products was only observed up to 0.5-0.7 mmol/l NaOCl. The yield of lipid hydroperoxides kept constant at higher NaOCl concentrations. However, diene conjugates and malondialdehyde exhibit a maximum at 0.7-1 mmol/l or 0.5 mmol/l NaOCl, respectively, while the concentration of these products decreases at higher doses of NaOCl. The decrease of malondialdehyde was more pronounced than for diene conjugates. These results were discussed from the background that at minimum two (diene conjugates) or three (malondialdehyde) double bonds in a fatty acid residue are necessary for formation of lipid peroxidation products.

Egg Yolk↗

Peroxidation of human blood lipoproteins induced by exogenous hypochlorite or hypochlorite generated in the system of "myeloperoxidase + H2O2 + Cl-".

Oxidation of human plasma lipoprotein (LP) was studied in the presence of exogenous hypochlorite anion (OCl-) or OCl- generated in the "myeloperoxidase + H2O2 + Cl-" system. OCl- effectively initiates peroxidation of lipids extracted from LP and those within LP particles, as can be judged from accumulation of secondary (thiobarbituric acid [TBA] reactive) and final (Schiff bases) products of lipid peroxidation (LPO) in LP after incubation with myeloperoxidase or exogenous OCl-. Very low density and low density lipoproteins classified as atherogenic LP are more sensitive to OCl(-)-induced LPO than high density lipoproteins. These data allow us to propose that OCl- secreted by activated neutrophils and monocyte-macrophages can produce oxidative modification of LP in vivo. The latter is known as a risk factor in the development of atherosclerosis.

Chlorides↗

[Capacity of hypochlorite to penetrate into the lipid phase of human blood lipoproteins].

In order to elucidate the possibility of hypochlorite (NaOCl) presenting in aqueous media to penetrate into the surface proteolipid layer of low density lipoproteins (LDL), the kinetics of NaOCl-induced oxidation of spin probes localized within the lipid phase was studied. The paramagnetic analogs of stearic acid were employed as spin probes that contained doxyl groups localized at different positions on the carbon chain (at positions 5, 13 and 16). It was shown that all the three probes are oxidated by hypochlorite with the same rate both in aqueous media and in LDL. The results obtained indicate that hypochlorite in water may interact with groups in the lipid phase of LDL, including unsaturated--HC = CH--bonds.

Electron Transport↗

[A spin-probe study of the structural change in human blood lipoproteins under the action of sodium hypochlorite].

The spin-probe technique was used to study structural changes in the surface proteolipid layer of human blood low-density lipoproteins (LDL) peroxidized to different degree by sodium hypochlorite (NaOCl). The paramagnetic analogs of stearic acid were employed as spin labels that contained nitroxide groups localized at different distances from the LDL surface. In addition, a positively charged spin label was used which was distributed at the lipid-water interface, in the area of polar phospholipid groups. NaOCl was shown to induce the lipid peroxidation of LDL. It diminished the mobility of polar "heads" as well as of acyl phospholipid chains up to 1.7 nm from the LDL particle surface and increased the polarity of lipid phase in this region. In the deeper layers (2.0-2.2 nm) the structural alterations in LDL were registered only at NaOCl concentration more than 1 mM.

Electron Spin Resonance Spectroscopy↗

Influence of polar polymers on the apoprotein region of human serum lipoproteins: an electron paramagnetic resonance (EPR) study.

Electron spin resonance spectroscopy was used for measurements of the surface potential and apoprotein structure of LDL and HDL in the presence of Ca2+ and dextran sulfate, heparin and chondroitin sulfate. A decrease in the absolute values of surface potential of LDL and HDL was observed after addition of Ca2+. In the presence of the negatively charged macromolecules the measured surface potential was less reduced. The spectral properties of a maleimide spin label covalently attached to the apoprotein were changed under conditions of aggregation of LDL induced by dextran sulfate, chondroitin sulfate or heparin in the presence of Ca2+. In the HDL system this effect was only observed for dextran sulfate. The influence of PEG on the spectral parameters of the spin label is dependent on the molecular weight of the polymer. PEG 400 decreased the mobility of the spin-labelled apoprotein region of LDL, whereas PEGs with higher molecular weight only slightly increased the maleimide mobility. On the other hand, the maleimide-labelled apoprotein region of HDL showed a higher sensibility to all PEGs used. Addition of PEG leads to immobilization of apoprotein A.

Apolipoproteins↗

[Rabbit liver secretes oxidated lipoproteins in experimental atherosclerosis].

It is shown in rabbits, that alimentary hypercholesterolemia proceeds with increasing lipid peroxidation in liver homogenate, blood serum and apo-B-containing lipoproteins. It is established in the model of liver perfusion in rabbits, that liver cells produce apo-B-containing level of lipid peroxidation. The lipid peroxidation increases in perfusate and in the fraction of lipoproteins (d less than 1,065 g/cm3) from this perfusate. Lipid peroxidation can interfere in the changing of physicochemical characteristics of lipoproteins at the stage of synthesis and secretion of lipoproteins by liver cells.

Animals↗

Free radical modification of lipoproteins and cholesterol accumulation in cells upon atherosclerosis.

An electron spin probe study was made of the effect of lipid peroxidation (LPO) on the structure of surface proteolipid layer of human serum low-density lipoproteins (LDL). The results obtained with a positively charged spin label and stearic acid spin probes with doxyl labels at positions 5, 12, and 16 revealed that LPO caused a decrease in phospholipid molecule mobility both in the region of polar heads and in the region of acyl chains till the depth of at least 1.7 mm from water-lipid interface. Under relatively high levels of oxidation (more than 6 mumol MDA/g LDL phospholipid) the polarity of lipid phase increased. The decrease in efficiency of tryptophan fluorescence quenching by nitroxide fragments incorporated in hydrophobic regions at the depth of approximately 2 nm from water-lipid interface indicated that lipid-protein interaction was disturbed as a result of oxidation of LDL lipids. In addition, the LPO-induced modification of apo-B, the main protein of LDL, was examined with maleimide spin label. LPO led to increase in mobility of strongly immobilized maleimide labels and in the number of weakly immobilized ones. Oxidized LDL revealed decreased ability to incorporate spin-labeled steroid (androstane) as compared to native ones. LPO-induced structural changes of LDL surface are supposed to be a reason of enhanced accumulation of cholesterol in human monocytes during their incubation with oxidized LDL. The cholesterol content in red cells was shown to be directly correlated to MDA content in apo-B containing lipoproteins but not in whole serum. Our findings suggest that free radical modification of serum lipoproteins but not solely an increased level of LPO products in blood is one important cause for cholesterol accumulation in cells and, apparently, for their transformation into foam cells during atherosclerosis.

Arteriosclerosis↗