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[Cerebral vasospasm and lipid peroxidation--lipid peroxides in the cerebrospinal fluid after subarachnoid hemorrhage].

The relationship between lipid peroxides in cerebrospinal fluid (CSF) and the occurrence of cerebral vasospasm following subarachnoid hemorrhage (SAH) was evaluated by analyzing CSF with high-performance liquid chromatography (HPLC) and gas chromatography mass spectrometry (GC-MS). Hydroperoxy eicosatetraenoic acids (HPETEs) and hydroxy eicosatetraenoic acids (HETEs) were synthesized by the treatment of arachidonic acid with hydrogen peroxide and cupric chloride. The retention time of these HPETEs and HETEs were determined on HPLC. The position of oxydation occurred was determined after methylation, reduction and trimethyl silylation using GC-MS. Thus the elucidation of positional isomers of HPETEs and HETEs was made possible by the retention time on HPLC. The supernant of CSF after SAH was adjusted to pH 3.0 and then absorbed to octadecyl silyl silica column. The eluted fraction with 15% ethanol-water from octadecyl silyl silica column was analyzed by HPLC detecting at 238 nm. No peak was observed on HPLC at the region of HPETEs and HETEs in the CSF obtained from healthy person. In SAH patients, several peaks were recognized in accordance with the occurrence of cerebral vasospasm. One of the peaks was identified as 5-HETE by HPLC and GC-MS. In 10 SAH patients, semi-quantitative analysis of 5-HETE in the CSF was performed by measuring the height of the peak identified as 5-HETE on HPLC. The close correlation was recognized between the occurrence of cerebral vasospasm and the appearance of 5-HETE in the CSF. The results of the present study suggest that lipid peroxidation is involved in the pathogenesis of chronic vasospasm after SAH.

Arachidonic Acids↗

Effects of testosterone on lipid peroxidation, lipid profiles and some coagulation parameters in rabbits.

The purpose of this study was to investigate the effects of testosterone on some risk factors of atherosclerosis. Twenty-four male New Zealand white rabbits were randomly divided into three groups of eight. The first group was used as control. Second group was injected with 10 mg of testosterone propionate. Third group was castrated bilaterally. At the end of 6 weeks, lipid peroxidation (LPO), lipid profile, fibrinogen (FBN) level and coagulation parameters were evaluated. Testosterone administration decreased the level of high-density lipoprotein cholesterol (HDL-C), while castration increased this level (P < 0.05). Triglyceride (TG) and total cholesterol (TC) levels in the castration group were significantly higher (P < 0.05) than those in the testosterone group. The ratio of HDL-C:low-density lipoprotein cholesterol (LDL-C) decreased, while TC:HDL-C ratio increased (P < 0.05) in the testosterone group. No significant differences were found in the LDL-C and FBN levels among groups. However, there was a tendency for higher FBN level in the testosterone group. Testosterone administration resulted in an increase in the level of LPO (P < 0.05). Clotting time and prothrombin time prolonged in the castration group compared with testosterone group (P < 0.05). As a result, testosterone has exacerbating effect on atherosclerosis risk factors including lipid profile, LPO, FBN and coagulation system.

Animals↗

Age-dependent production of mitochondrial hydrogen peroxide, lipid peroxides and fluorescent pigments in the rat heart.

Mitochondria were prepared from hearts of 3-, 14-, 18-, and 24-month-old male Wistar rats. Respiratory control ratio (RCR) values did not change with age in the glutamate or succinate-induced respiration except at 24 months in which RCR values significantly increased with both the substrates. Using still glutamate or succinate as substrates the production of H2O2 was measured in the presence of antimycin. A 70% and 25% increase in H2O2 formation was observed at 14 and 18 months of age, respectively, in comparison to the youngest group. Only in the presence of succinate was a 25% elevation in H2O2 found at 24 months of age. These observations parallel with the decrease of the ratio between tissue levels of reduced and oxidized glutathione that was observed at 14 and 18 months of age. The concentration of myocardial malondialdehyde, a secondary product of lipid peroxidation, remained the same at all ages measured, most probably because it is readily metabolized in vivo. On the contrary the myocardial level of lipofuscin, which is not degraded by the cell, progressively increased beginning from 18 months of age.

Aging↗

Relative alpha-tocopherol deficiency in cultured cells: free radical-mediated lipid peroxidation, lipid oxidizability, and cellular polyunsaturated fatty acid content.

We propose that most cultured cells are deficient in vitamin E. Using our optimized assay for tocopherol, we find that L1210 lymphoblastic leukemia cells, cultured in standard growth media, contain only 2.3 +/- 0.03 micrograms of tocopherol/10(8) cells, whereas when they are transplanted and grown for the same time in the ascites fluid of mice fed standard diets, this increases to 5.8 +/- 0.6 micrograms of tocopherol/10(8) cells. This apparent tocopherol deficiency in cultured cells is likely due to the low concentrations of tocopherol contained in most tissue culture media, even with the addition of serum. To further study this apparent deficiency and the relationship of cellular tocopherol to membrane lipid bis-allylic hydrogen positions, we supplemented the growth media of L1210 lymphoblastic leukemia cells with alpha-tocopherol and compared the resultant cellular tocopherol content to the degree of unsaturation of cellular lipids, alpha-Tocopherol was incorporated by cells in a time- and concentration-dependent manner with plateaus at 24 h and 100 microM, respectively. A maximum 400% increase in cellular tocopherol was easily achieved. By experimentally modifying the fatty acid content of cellular lipids, we were able to determine that cellular tocopherol uptake and content is not a function of cellular lipid composition; cells enriched with polyunsaturated lipids incorporated tocopherol to the same extent as those enriched with more saturated lipids. Thus, as the cellular polyunsaturated fatty acid content increases, the tocopherol:bis-allylic position ratio in the cells decreases, resulting in less antioxidant protection for each lipid double bond. Consequently, when polyunsaturated fatty acid-enriched cells are exposed to an oxidative stress, such as Fe2+, their tocopherol levels decline much faster than cells enriched with saturated fatty acids. This decline is consistent with their respective tocopherol:bis-allylic position ratio. These results provide a basis, at the cellular level, for investigators to consider vitamin E when studying cell response to oxidative stress.

Animals↗

Induction by estrogens of lipid peroxidation and lipid peroxide-derived malonaldehyde-DNA adducts in male Syrian hamsters: role of lipid peroxidation in estrogen-induced kidney carcinogenesis.

Estrogen-induced kidney carcinogenesis in male Syrian hamsters has previously been postulated to be mediated by free radicals generated by redox cycling of catecholestrogen metabolites. As part of our examination of this hypothesis, we have studied the induction of lipid peroxidation and lipid peroxide-derived malondialdehyde (MDA)-DNA adducts in kidney and liver of hamsters treated with single injections of diethylstilbestrol (DES) or with estradiol (E2) implants for various lengths of time. Treatment of hamsters with 50 and 100 mg/kg DES increased concentrations of both lipid hydroperoxides and of MDA-DNA adducts. In hamsters treated with E2 implants for up to 50 days, lipid peroxide levels in liver were double control values 3 h after hormone implantation, and then decreased to plateau values of 30% over controls. Those in kidney rose to 2- to 3-fold above controls 3 days after hormone implantation and then decreased to plateau values of 51% above controls. MDA-DNA adduct levels were two or three times higher than those of controls in liver and kidney of hamsters treated with hormone implants for 3 and 7 days. Renal lipid peroxide concentrations were raised by chronic treatment with E2, but not by weakly carcinogenic estrogens ethinylestradiol or 2-fluoroestradiol. In contrast, MDA-DNA adduct levels were raised by all three steroidal estrogens 3 days after estrogen implantation. The increases in lipid peroxides and in MDA-DNA adducts in estrogen-treated hamsters support a mechanism of carcinogenesis by free radical generation via redox cycling of catcholestrogen metabolites. Lipid peroxides are postulated to play a dual role in estrogen-induced carcinogenesis, (i) as cofactors for cytochrome P450-mediated formation of catecholestrogen metabolites and their redox cycling, and (ii) as precursors of MDA, a DNA adduct-forming endogenous electrophile.

Animals↗

[Studies on membrane factors in iron-supported lipid peroxidation].

Lipid peroxidation in biomembranes is mediated by free radical reactions. It leads to membrane damage and has been proposed to be associated with the pathogenesis to tissue injuries. Iron is known as a catalyst of lipid peroxidation. Microsomal lipid peroxidation by both NADPH and iron-chelate, such as Fe(3+)-ADP or Fe(3+)-PPi, is believed to be enzymatically associated with iron reduction. On the other hand, the addition of free Fe2+ to microsomes or liposomes produces a lag phase before the maximal rates of lipid peroxidation. We examined the interaction of iron with membrane in iron-supported lipid peroxidation and microsomal membrane components associated with iron reduction in NADPH-supported lipid peroxidation. Iron-supported lipid peroxidation was affected by the surface charges of liposomal membrane. Liposomes containing phosphatidylserine (PS) were most sensitive to iron-supported lipid peroxidation. The effect of PS on iron-supported lipid peroxidation indicates that iron participates in binding to membrane surface charges and also indicates that Fe2+ at high level bound to membranes plays a role in producing a lag phase. The mechanism producing a lag phase in Fe(2+)-PPi-supported lipid peroxidation is discussed. In NADPH-supported lipid peroxidation in microsomes, it seemed unlikely that superoxide may be involved in iron reduction. Alternatively, under anaerobic conditions, NADPH-supported iron reduction in microsomes was not dependent on cytochrome P450 content and not inhibited by CO. A cholate-solubilized fraction of microsomes was applied to a laurate-Sepharose column and an active fraction for lipid peroxidation was obtained. Involvement of a heat-labile component, distinct from cytochrome P450, responsible for iron reduction in microsomal lipid peroxidation was demonstrated.

Animals↗

Lipid peroxidation and lipid peroxide detected by chemiluminescence.

This article emphasizes the advantages of using a luminescence spectrometer based on photon counting techniques for the detection of lipid peroxidation. An overview is presented of how chemiluminescence can be stimulated in the luminol-cytochrome c heme peptide system as an assay for lipid hydroperoxides. This method is used for finding antioxidant drugs. The specificity and advantages of the chemiluminescent method for detecting lipid hydroperoxides is reviewed.

Animals↗

Influence of Ca2+ on microsomal lipid peroxidation.

Lipid peroxidation in microsomes prepared from liver of mice was initiated by NADPH, ascorbic acid and ferrous ions. The presence of Ca2+ modulated the lipid peroxidation in all these three systems. The mode and magnitude depend on the system and concentration of cofactors used for initiation of lipid peroxidation. In ascorbate system, Ca2+ enhanced the lipid peroxidation up to 30 microM concentration of ascorbic acid and beyond 30 microM concentration it inhibited. Ca2+ increased NADPH-dependent lipid peroxidation at all concentrations. Depending on concentration of Fe2+, lipid peroxidation was either decreased or increased in presence of Ca2+. It suggested that the in vitro findings may be cautiously extrapolated to the animal systems. In absence of cofactors, Ca2+ enhanced lipid peroxidation. EGTA inhibited Ca2+-enhanced lipid peroxidation. However in presence of ionophore A23187, Ca2+ potentiated lipid peroxidation. Since Ca2+ has a closed-shell electronic state and lacks electronic transitions, it may not participate directly in lipid peroxidation process. The effect of Ca2+ on lipid peroxidation may be through some biochemical processes or its interactions with membranes leading to various changes in their characteristics.

Animals↗

Serum lipid peroxides and lipids in urban and rural Indian men.

Serum lipid peroxides, lipids, blood pressure, body mass index, and dietary intake in 190 urban men were compared with 190 age-matched rural men. Significantly higher levels of lipid peroxides, serum cholesterol, low-density lipoprotein cholesterol, and triglycerides were seen in urban men, compared with rural men. In rural men, serum lipid peroxides were related negatively to age; the same was observed in the 70 + y age group in the urban population. All the lipid constituents were related positively to age in both populations. There were statistically significant correlations between lipid peroxides and serum cholesterol and triglycerides in the urban men. The marked elevation of lipid peroxides and lipids in urban men may be the result of urbanization, including exposure to environmental pollutants.

Adult↗

[The present-day look at lipid peroxidation].

Lipid peroxidation occurs in physiological conditions and it consists in oxidation of polyunsaturated fatty acids, which are basic biological membrane components. There are two pathway of lipid peroxidation: nonenzymatic and enzymatic. Both of the processes result in generation of various reactive products. Nonenzymatic lipid peroxidation consists in free radical oxidation of polyunsaturated fatty acids while in enzymatic lipid peroxidation the generation of lipid hydroxyperoxides is achieved by insertion of an oxygen molecule at the active centre of lipoxygenase. In this manuscript mechanisms of two processes are described in details. We concentrate on final products of oxidation fatty acids: isoprostanes and neuroprostanes which are regarded as the most important biomarkers of lipid peroxidation as well as on the role of enzymes participating in enzymatic lipid peroxidation process. Moreover we discuss catalytic activity of glutathione peroxidases and transferases--enzymes preventing results of oxidation polyunsaturated fatty acids.

Aldehydes↗

Effects of taurine and ketamine on bovine retinal membrane lipid peroxidation.

Lipid peroxidation disrupts membrane integrity and causes structural and functional alterations in ischemic tissues. Taurine and ketamine are putative ischemic protectants that affect Ca2+ influx. Here we report the influence of these compounds on lipid peroxidation in subcellular fractions, isolated cells and intact tissue from bovine retinas. P2 membrane fractions and isolated cells were exposed to the lipid peroxidation inducers cadmium chloride (200 microM) or L-ascorbic acid (1 mM) in the presence of 0-50 mM taurine, 0-10 mM ketamine, 1 mM kynurenic acid or 1 mM dextromethorphan. The latter compounds are N-methyl-D-aspartate receptor antagonists. Lipid peroxidation in isolated eyes reperfused after 1 h of ischemia either with or without protectants was determined by thiobarbituric acid assay. Glutathione was measured in isolated retinas subjected in vitro to simulated ischemia (no glucose or oxygenation) for 60 min either alone or in the presence of taurine or ketamine. Ketamine inhibited chemical- or ischemia-induced lipid peroxidation as well as ischemic glutathione depletion. Under the same conditions, taurine failed to affect lipid peroxidation or glutathione. The data show a direct effect of ketamine on lipid peroxidation and point to separate mechanisms of action for ketamine and taurine.

Animals↗

Paradoxical influence of Ca(2+) on lipid peroxidation.

Lipid peroxidation and Ca2+ are suggested to be linked as a mediator of cell damage and death. Lipid peroxidation is a free radical phenomenon. It is highly destructive process and induces plethora of alterations in structure and function of cellular membranes which could lead to cell injury. Ca2+, a regulator of variety of physiological and biochemical functions, was shown to enhance as well as inhibit lipid peroxidation. The explanations provided for the protection as well as the potentiation of lipid peroxidation by Ca2+ were, to some extent, speculative in nature and some of the basic facts seem to be overlooked. Moreover, Ca2+ has a closed-shell electronic state and lacks electronic transitions and hence it may not participate directly in a free radical reaction to modulate lipid peroxidation process. Perhaps this could be the reason for conflicting reports on this aspect. In the present review, the interactions between Ca2+ and lipid peroxidation are critically examined.

Animals↗

Effect of succinate on mitochondrial lipid peroxidation. 1. Comparative studies on ferrous ion and ADP . Fe/NADPH-induced peroxidation.

Lipid peroxidation in isolated rat liver mitochondria, mitoplast, and mitochondrial inner membrane fragments was induced either by ferrous ions, or in an NADPH-dependent process by complexing with adenine nucleotides (ADP or ATP) iron. The Fe2+-induced lipid peroxidation is nonenzymic when inner membrane fragments are used, while the differences in the inhibitory effect of Mn2+ ions and the stimulatory effect of the ionophore A-23187 in mitochondria and inner membrane fragments suggest an enzymic mechanism for ferrous ion-induced lipid peroxidation in intact mitochondria. Contrary to this the ADP/Fe/NADPH-dependent lipid peroxidation is an enzymic process both in mitochondria and inner membrane preparations. We have shown that cytochrome P450 is involved in the ADP/Fe/NADPH-induced lipid peroxidation. Succinate, a known inhibitor of NADPH-dependent lipid peroxidation, inhibited the Fe2+-induced process also, and there was no difference in this effect when inner membrane preparations, mitochondria, or mitoplasts were used.

Adenosine Diphosphate↗

Metabolic aspects of membrane lipid peroxidation.

Lipid peroxidation is a free radical initiated chain oxidation of unsaturated lipids. With respect to the ubiquity of unsaturated fatty acids in the cellular membranes, the peroxidative damage has the potential to affect many cellular functions. Some of the products of lipid peroxidation are diffusible and can spread the damage far beyond the site of the original free radical attack. There is an interdependency between reactive oxygen species and lipid peroxidation - reactive oxygen species initiate the reactions of lipid peroxidation and are also produced in these reactions as intermediates. The generation of reactive oxygen species can be triggered either by nonenzymatic mechanisms, in which iron ions play the major role, or by a wide range of enzymatic systems. The primary damaging effect of lipid peroxidation is exerted by the interactions with proteins and DNA. These interactions are then revealed at the subcellular (cellular organelles), cellular, and organ levels. The production of lipid peroxides interferes with the regulation of several metabolic pathways. In this review, particular attention is focused on the interaction of non-specifically formed lipid peroxides with the regulatory factors produced by the controlled oxidation of arachidonic acid (prostaglandins and leukotrienes), the effects on ionic pumps and intracellular calcium metabolism, the participation of lipid peroxidation in the ageing process, and the modulation of hormonal regulations by lipid peroxidation. Lipid peroxidation is induced at the level of the whole organism by various extrinsic factors such as ionizing irradiation, physical activity, diet and fasting, and various drugs. There is increasing awareness of the association between pathologic states and lipid peroxidation. Among the most studied are inflammation, ischaemia-reperfusion injury, and atherogenesis. Lipid peroxidation also plays a dual and complex role in cancer. Organisms have developed an efficient multilevel protective system against lipid peroxidation, but this can be overwhelmed by certain pathologies.

Animals↗

Mechanism of ochratoxin A stimulated lipid peroxidation.

Lipid peroxidation, measured as malondialdehyde formation or by oxygen uptake, was stimulated markedly by the mycotoxin ochratoxin A (OTA) in a reconstituted system consisting of phospholipid vesicles, the flavoprotein NADPH-cytochrome P450 reductase, Fe3+, EDTA and NADPH. Deletion of EDTA lowered the extent of lipid peroxidation but did not eliminate it. Fluorometric and spectrophotometric studies demonstrated the formation of a 1:1 Fe3(+)-OTA complex. The rate of reduction of Fe3+ to Fe2+ was enhanced markedly in the presence of OTA, and there was a further increase in the rate when EDTA was also included. The data indicate that OTA stimulates lipid peroxidation by complexing Fe3+ and facilitating its reduction. Subsequent to oxygen binding, an iron-oxygen complex of undetermined nature initiates lipid peroxidation. Free hydroxyl radicals appear not to participate in lipid peroxidation stimulated by Fe3(+)-OTA.

Animals↗

Evaluation of adriamycin-induced lipid peroxidation.

Lipid peroxidation is known to be a mechanism for Adriamycin-induced toxicity. In the present study, two methods which detect fluorescent substances and high molecular weight protein aggregates in peroxidized membranes were applied to Adriamycin-induced lipid peroxidation in liver microsomes. A rat liver microsomal suspension containing an NADPH-generating system was incubated with Adriamycin. Thiobarbituric acid reactive substances (TBA-RS), formed during this incubation, were transferred from the microsomes to the medium. Fluorescent substances determined by the fluorescence emitted from both the microsomes themselves and the chloroform/methanol extracts of the microsomes, were found to be formed during this incubation. High molecular weight protein aggregates determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, were also formed. Fluorescent substances and high molecular weight protein aggregates were found in microsomal membranes themselves and increased time dependently. These substances retained in membranes can be of great use to delineate the site of Adriamycin-induced lipid peroxidation in vitro and in vivo and to determine how this lipid peroxidation affects the membrane.

Animals↗

Measurement of lipid peroxidation.

Lipid peroxidation results in the formation of conjugated dienes, lipid hydroperoxides and degradation products such as alkanes, aldehydes and isoprostanes. The approach to the quantitative assessment of lipid peroxidation depends on whether the samples involve complex biological material obtained in vivo, or whether the samples involve relatively simple mixtures obtained in vitro. Samples obtained in vivo contain a large number of products which themselves may undergo metabolism. The measurement of conjugated diene formation is generally applied as a dynamic quantitation e.g. during the oxidation of LDL, and is not generally applied to samples obtained in vivo. Lipid hydroperoxides readily decompose, but can be measured directly and indirectly by a variety of techniques. The measurement of MDA by the TBAR assay is non-specific, and is generally poor when applied to biological samples. More recent assays based on the measurement of MDA or HNE-lysine adducts are likely to be more applicable to biological samples, since adducts of these reactive aldehydes are relatively stable. The discovery of the isoprostanes as lipid peroxidation products which can be measured by gas chromatography mass spectrometry or immunoassay has opened a new avenue by which to quantify lipid peroxidation in vivo, and will be discussed in detail.

Aldehydes↗

[Effects of manganese, zircon and lithium alone on rat liver lipid peroxidation].

Lipid peroxide (LPO) in rat liver was detected by malondiadehyde (MDA) colorimetry. The effect of manganese, zircon and lithium alone on lipid peroxidation in rat liver was also studied. The results showed that manganese and zircon at the doses of (9.862-1.972) x 10(-4) and (0.1972-9.862) x 10(-5) nmol/L respectively decreased LPO in rat liver(P < 0.01). Lithium inhibited lipid peroxidation at the dose of (19.72-1.972) x 10(-4) nmol/L, and induced lipid peroxidation at higher concentration.

Animals↗