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Lipid peroxidation in adrenal and testicular microsomes.

Studies were carried out to determine the actions of and interactions between ascorbate, NADPH, Fe2+, and Fe3+ on lipid peroxidation in adrenal and testicular microsomes. Ascorbate-induced malonaldehyde production was maximal in adrenal and testicular microsomes at an ascorbate concentration of 1 X 10(-4)M. Fe2+, at levels between 10(-6) and 10(-3)M, produced concentration-dependent increases in lipid peroxidation in adrenal and testicular microsomes; Fe2+ had a far greater effect than Fe3+ in both tissues. In liver microsomes, by contrast, Fe2+ and Fe3+ had quantitatively similar effects on lipid peroxidation. NADPH alone had no effect on malonaldehyde production in adrenal or testicular microsomes. However, in the presence of low Fe2+ concentrations (10(-6)M), NADPH stimulated adrenal malonaldehyde production. The stimulation of lipid peroxidation by NADPH plus low Fe2+ was not demonstrable in testicular microsomes nor in adrenal microsomes which had been heat-treated to inactivate microsomal enzymes. Testicular malonaldehyde production was stimulated by NADPH if Fe3+ (5 X 10(-5) to 1 X 10(-3)M) was added to the incubation medium; the stimulation was not demonstrable in heat-treated microsomes. Fe3+ plus NADPH had little effect on adrenal lipid peroxidation. In the presence of high Fe2+ levels (10(-3)M), NADPH produced a concentration-dependent inhibition of adrenal lipid peroxidation; the inhibition was fully demonstrable in heat-treated microsomes. NADPH similarly inhibited ascorbate-induced lipid peroxidation in adrenal microsomes. In testicular microsomes, NADPH did not inhibit ascorbate or Fe2+-induced lipid peroxidation. The results indicate that various endogenous substances may be important in the control of adrenal and testicular lipid peroxidation and that the nature of the regulation differs from tissue to tissue.

Adrenal Glands↗

Disinfection of wastewater by hydrogen peroxide or peracetic acid: development of procedures for measurement of residual disinfectant and application to a physicochemically treated municipal effluent.

The Montreal Urban Community Wastewater Treatment Plant (MUCWTP) located in Montreal. Quebec, Canada, uses physicochemical treatment processes prior to discharging wastewater into the St. Lawrence River via an outfall tunnel of 2 hours retention time. Although chlorination facilities exist, they are not being used, and the MUCWTP is seeking alternative methods for disinfection to achieve a 2- to 3-log fecal coliform reduction. Liquid chemical disinfectants were attractive options because of their low capital costs. This led to an investigation of the feasibility of using hydrogen peroxide or peracetic acid. A method for measuring peroxycompounds (hydrogen peroxide or peracetic acid plus hydrogen peroxide) was developed using the peroxidase-based oxidation of 2,2'-azino-bis(3-ethylbenz-thiazoline-6-sulfuric acid) diammonium salt (ABTS) with hydrogen peroxide. The validity of the method was confirmed using effluent from the MUCWTP. Recovery was higher than 90% for peracetic acid levels as low as 1.0 mg/L. Quenching of hydrogen peroxide was achieved with 50-mg/L catalase; quenching of peracetic acid was achieved with 100 mg/L of sodium thiosulfate, followed by 50 mg/L of catalase. Batch disinfection tests were conducted on MUCWTP effluent. Hydrogen peroxide and peracetic acid in wastewater over time could be modeled as a second-order decay, with the decay "constant" being a function of the initial concentration of peroxycompounds. This function was the same for both hydrogen peroxide and peracetic acid, possibly indicating similar decomposition pathways in wastewater matrices. Disinfection was modeled using a modified Hom equation. Required doses of hydrogen peroxide to reach the target fecal coliform levels ranged from 106 to 285 mg/L, with the higher doses occurring when ferric chloride instead of alum was used as the coagulant. Hence, hydrogen peroxide was infeasible as a disinfectant for this application. On the other hand, the peracetic acid dose needed to achieve the target fecal coliform level was only 0.6 to 1.6 mg/L. Therefore, peracetic acid seems to be a promising disinfectant for physicochemical or primary effluent, or combined sewer overflows.

Algorithms↗

Inhibitory effects of ebselen on lipid peroxidation in rat liver microsomes.

The effects of ebselen(2-phenyl-1,2-benzoisoselenazol-3(2H)-one), a synthetic seleno-organic compound with glutathione peroxidase-like activity were investigated on lipid peroxidation in rat liver microsomes. Ebselen inhibited malondialdehyde production coupled to the lipid peroxidation stimulated by either ADP-iron-ascorbate or CCl4. The inhibitory activity of ebselen on each system was strongly increased by a 5-min preincubation with liver microsomes; the IC50 values against ADP-Fe-ascorbate-stimulated and CCl4-stimulated lipid peroxidation were 1.6 microM and 70 microM respectively. Ebselen also inhibited the endogenous lipid peroxidation with a NADPH-generating system, but it slightly stimulated the endogenous activity of ADP-Fe-ascorbate-stimulated lipid peroxidation (without a NADPH-generating system). Furthermore, ebselen inhibited oxygen uptake coupled to the lipid peroxidation by ADP-Fe-ascorbate and NADPH-ADP-iron; the IC50 values were 2.5 microM and 20.3 microM respectively. Ebselen also prolonged the lag-time of onset of ADP-Fe-ascorbate-stimulated lipid peroxidation significantly, but not that observed with NADPH-ADP-Fe-stimulated lipid peroxidation. These findings suggest that ebselen penetrates into the membrane lipid and acts as an effective antioxidant, and that there may be some differences between the modes of inhibitory action on the several types of lipid peroxidation.

Adenosine Diphosphate↗

Ascorbic acid inhibits lipid peroxidation but enhances DNA damage in rat liver nuclei incubated with iron ions.

In this report we studied DNA damage and lipid peroxidation in rat liver nuclei incubated with iron ions for up to 2 hrs in order to examine whether nuclear DNA damage was dependent on membrane lipid peroxidation. Lipid peroxidation was measured as thiobarbituric acid-reactive substances (TBARS) and DNA damage was measured as 8-OH-deoxyguanosine (8-OH-dG). We showed that Fe(II) induced nuclear lipid peroxidation dose-dependently but only the highest concentration (1.0 mM) used induced appreciable 8-OH-dG. Fe(III) up to 1 mM induced minimal lipid peroxidation and negligible amounts of 8-OH-dG. Ascorbic acid enhanced Fe(II)-induced lipid peroxidation at a ratio to Fe(II) of 1:1 but strongly inhibited peroxidation at ratios of 2.5:1 and 5:1. By contrast, ascorbate markedly enhanced DNA damage at all ratios tested and in a concentration-dependent manner. The nuclear DNA damage induced by 1 mM FeSO4/5 mM ascorbic acid was largely inhibited by iron chelators and by dimethylsulphoxide and mannitol, indicating the involvement of OH. Hydrogen peroxide and superoxide anions were also involved, as DNA damage was partially inhibited by catalase and, to a lesser extent, by superoxide dismutase. The chain-breaking antioxidants butylated hydroxytoluene and diphenylamine (an alkoxyl radical scavenger) did not inhibit DNA damage. Hence, this study demonstrated that ascorbic acid enhanced Fe(II)-induced DNA base modification which was not dependent on lipid peroxidation in rat liver nuclei.

8-Hydroxy-2'-Deoxyguanosine↗

Dietary lead alters fatty acid composition and membrane peroxidation in chick liver microsomes.

Inorganic Pb acetate is a pro-oxidant, and peroxidation damage to cellular membrane lipids, leading to membrane fragility and permeability, is a likely consequence of Pb poisoning. In addition to the systemic peroxidation that occurs in vivo, Pb-contaminated feedstuffs can contribute preformed peroxides. Treatments with dietary Pb that have been shown to increase tissue peroxide levels in animals may be related to the consumption of preformed peroxides from the diet. In the current study, we evaluated the possible separate effects of feed and systemic peroxides by administering equivalent doses of Pb acetatetrihydrate to chicks via either 1,500 ppm Pb in the diet or via gastric intubation. Peroxidation of lipids in hepatic microsomal membranes (assessed as malonyldialdehyde production) from birds intoxicated with Pb by either route of administration was more than double that of untreated controls. Also, both routes of Pb exposure doubled the concentration of hepatic microsomal arachidonic acid, a peroxidizable polyunsaturated fatty acid. In the data reported here, we show that tissue peroxide levels are unaffected by the method of oral Pb administration and thus, by inference, independent of peroxide content of the feed.

Administration, Oral↗

[Oxidative destruction of estradiol after treatment with hydrogen peroxide catalyzed by horseradish peroxidase and methemoglobin].

It is shown that estradiol in the presence of horse radish peroxidase interacts with hydrogen peroxide, which is evidenced by an increase in its optical density at 280 nm. The photometering of samples containing estradiol and horse radish peroxidase upon their titration with hydrogen peroxide indicated that the increase in optical density stops after introducing hydrogen peroxide equimolar in concentration to estradiol. The stoichiometric ratio of estradiol consumed during oxidative destruction to hydrogen peroxide was 1:1. In the presence of ascorbate, the oxidative destruction of estradiol by the action of hydrogen peroxide, catalyzed by horse radish peroxidase, was observed only after a latent period and showed the same regularities as in the absence of ascorbate. It was found by calorimetry that, during the latent period, estradiol catalyzes the degradation of hydrogen peroxide and ascorbate without undergoing oxidative destruction. The substrates of the peroxidase reaction benzidine, 1-naphthol, and phenol interact with hydrogen peroxide in the presence of ascorbate and horse radish peroxidase in a similar way. Presumably, upon interaction with hydrogen peroxide in the presence of horse radish peroxidase, estradiol, like other substrates of this reaction, undergoes oxidative destruction by the mechanism of peroxidase reaction. It is shown that oxidative destruction of estradiol by the action of hydrogen peroxide can also be catalyzed by methemoglobin by the same mechanism. These data are important for understanding the role of estradiol in the organism and the pathways of its metabolic conversions.

Catalysis↗

Serum vitamins E, A and lipid peroxidation levels in Kurichias, an Indian tribal population.

Serum vitamins E, A, lipid peroxides, prevalence of dislipidemia, hypertension, obesity and smoking habits were assessed in a volunteer sample of 310 (175 males + 135 females) Kurichias, a tribal population of Kerala, India, who are enjoying longevity relatively free from age associated chronic problems. The mean serum levels of vitamins E and A were higher and lipid peroxides were lower with comparable ages of Indian and Western studies. The prevalence (age standardized to the world population of Segi 95% CI) was obesity 2.87 (1.22-4.53), central obesity 3.71 (2.27-5.15), hypertension 2.70 (1.92-3.48), hypercholesterolemia 0.71 (0.66-0.76), hypertriglyceridemia 2.60 (1.18-4.02) and low high density lipoprotein cholesterol 1.24 (1.07-1.42). Significant negative correlation was observed between vitamins and lipid peroxides. Serum cholesterol and triglycerides showed significant positive correlation with antioxidant vitamins and lipid peroxides. Blood pressure found positive correlation with lipid peroxides and no correlation with vitamins except systolic blood pressure having negative relation with vitamin A. Age showed negative correlation with vitamins and positive correlation with lipid peroxides, whereas lipid peroxides showed positive correlation with obesity only. In multivariate regression analysis serum cholesterol and old age groups were significant predictors of serum antioxidant vitamins and lipid peroxides. The higher levels of antioxidant vitamins, lower levels of lipid peroxides as well as low prevalence of CHD risk factors in Kurichias when compared to other populations suggest that antioxidants or increased intake of foods rich in antioxidants play a key role in their health and longevity.

Adult↗

Detection of lipid peroxidation in equine spermatozoa based upon the lipophilic fluorescent dye C1l-BODIPY581/591.

The lipophilic fluorescent probe, 4,4-difluoro-5-(4-phenyl-1 ,3-butadienyl)-4-bora-3a,4a-diaza-s-indacene-3-undecanoic acid (C11-BODIPY581/591) was used to evaluate changes in lipid peroxidation in equine spermatozoa during both short-term exposure to ferrous sulfate and sodium ascorbate in the presence of cumene hydroperoxide as well as during storage of spermatozoa at 5 degrees C for 48 hours. Peroxidation of C11-BODIPY581/591 was accompanied by a shift in fluorescence from red to green, and the relative amount of nonoxidized probe was determined as the ratio of red:(red + green) fluorescence as detected by either fluorescence microplate reader or by flow cytometry. The addition of Fe2SO4 (0 to 0.5 mM), low concentrations of sodium ascorbate, and the addition of cumene hydroperoxide increased peroxidation of C11-BODIPY581/591. The addition of high concentrations (10 or 20 mM) of sodium ascorbate or alpha-tocopherol reduced peroxidation of C11-BODIPY581/591 during short-term incubations. During storage at 5 degrees C in a skim milk-based extender, equine spermatozoa demonstrated a progressive decline in motility and a small but significant increase in lipid peroxidation based upon ratiometric analysis of C11-BODIPY581/591. The addition of Fe2SO4 increased lipid peroxidation in cooled spermatozoa in a dose-dependent fashion and decreased sperm motility. The addition of alpha-tocopherol, however, did not reduce lipid peroxidation during cooled semen storage. These data demonstrate that the lipophilic fluorescent probe C11-BODIPY581/591 is a useful measurement of lipid peroxidation in equine spermatozoa and that there is an increase in lipid peroxidation during cooled storage of equine spermatozoa that is increased in the presence of ferrous promoters.

Animals↗

Residual hydrogen peroxide as a function of platinum disc age.

Recently there has been considerable attention given to the possible deleterious effects of residual hydrogen peroxide on both the cornea and the crystalline lens of the eye. We measured residual hydrogen peroxide levels of the AOSept disinfection system at regular intervals over a 4 month period. By 1 month the residual hydrogen peroxide level was 21 ppm +/- 9.4 (mean +/- standard deviation); at the end of 2 months it was 36 ppm +/- 17.6. At 3 months, when disc replacement is recommended, the residual hydrogen peroxide level was 43 ppm +/- 4.7 (range: 17-98 ppm). At 4 months the residual hydrogen peroxide level rose to a mean of 48 ppm +/- 18.2. The increase in measured residual hydrogen peroxide between month 1 and each successive month was found to be statistically significant. However, these levels failed to induce an increase in symptomatology or slit lamp findings. As determined by scanning electron microscopy there was an erosion of the platinum coating with time that appeared to coincide with the measured residual peroxide level. Cultures of randomly selected platinum discs at the end of 4 months failed to reveal more than isolated positive findings of Staphylococcus epidermidis. While an increase in residual peroxide with time may lead to greater disinfecting capabilities of this system, the possibility of corneal damage as a direct result of high peroxide levels is of concern.

Adult↗

Mitochondrial hydrogen peroxide formation and the fumarate reductase of Hymenolepis diminuta.

The catalysis of hydrogen peroxide accumulation by the mitochondrial, membrane-associated NADH oxidase and less active succinoxidase of adult Hymenolepis diminuta was confirmed. NADH-dependent peroxide formation by isolated mitochondrial membranes occurred at about half the coincident rates of NADH and oxygen utilization, whereas succinate-dependent peroxide formation accounted for approximately 40% of the oxygen consumed. These findings, coupled with evaluations of the oxidases, indicated that both systems use in common 2 mechanisms for oxygen reduction, 1 of which is peroxide-forming. Neither system was sensitive to cyanide, azide, or antimycin A. Rotenone inhibition of NADH oxidation resulted in equivalent decreases in oxygen consumption by the peroxide-forming and nonperoxide-forming mechanisms. In contrast, malonate inhibition occurred via disruption of the peroxide-forming mechanism. Fumarate stimulated membrane-catalyzed NADH oxidation, despite aerobic conditions, and this fumarate reductase was rotenone-sensitive. NADH- or succinate-dependent peroxide formation virtually was abolished and oxygen consumption was minimal in the presence of fumarate. Malonate also inhibited fumarate-dependent NADH oxidation and succinate-dependent peroxide formation/oxygen consumption. Collectively, these findings clearly indicate that NADH- or succinate-dependent hydrogen peroxide accumulation involves the malonate-sensitive fumarate reductase, in the absence of fumarate. A model of the H. diminuta electron transport system is presented.

Animals↗

Albumin bound nonesterified fatty acids inhibit in vitro lipid peroxidation.

Individual nonesterified fatty acids were bound to albumin in vitro and these fatty acid albumin complexes were used to study their effect on lipid peroxidation in liver microsomes. Peroxidation was induced by various methods and malondialdehyde (MDA) was measured as an index of peroxidation. Among the fatty acids tested, albumin-bound monounsaturated fatty acids showed more inhibition of peroxidation as compared to other fatty acids. Increasing the concentration of iron in the peroxidizing system, partially reversed the inhibition by fatty acids. Moreover, albumin-bound fatty acid did not inhibit iron independent peroxidation. This suggests that, like nonesterified fatty acids, albumin-bound fatty acids inhibit peroxidation by chelating the iron. Albumin fatty acid complex, similar to the fatty acid composition present in the circulating albumin, also showed inhibition of peroxidation. These data indicate that nonesterified fatty acids even when bound to albumin are capable of inhibiting peroxidation and circulating albumin, which contains various fatty acids bound to it, may impart some antioxidant effect in addition to other plasma antioxidants.

Albumins↗

Directed targeting of immunoerythrocytes provides local protection of endothelial cells from damage by hydrogen peroxide.

Red blood cells bearing anti-mouse IgG antibody on their surface (immunoerythrocytes) may provide for local protection of endothelial cells from the action of hydrogen peroxide. Subconfluent cultures of human umbilical vein endothelial cells responded sharply to increasing concentrations of hydrogen peroxide. Permeabilization of cellular membrane occurred at doses of hydrogen peroxide of from 1 to 3 mM, and was assured by incorporation of trypan blue stain immediately after treatment. Latent damage of cells produced by much lower doses of hydrogen peroxide (0.2-0.4 mM) could be observed after 24-hour incubation of treated cells in the normal culture medium with no hydrogen peroxide. The apparently dead cells differed from intact cells in morphology, were poorly attached to the substrate, and were readily incorporated by trypan blue, thus permitting easy visualization. Immunoerythrocytes bound to the antigen-coated surface enzymatically decreased the concentration of hydrogen peroxide in their microenvironment at least fivefold with respect to the total hydrogen peroxide concentration. Erythrocytes deposited on a part of the endothelial monolayer locally protected it from the damage at hydrogen peroxide concentrations ranging from 0.4 to 1.2 mM. Localization of protected zones corresponded precisely to the geometry of the erythrocyte coating. Immunoerythrocytes targeted to the endothelial cells by means of mouse anti-endothelial antiserum did not impair their viability and protected the endothelium from being killed at 0.3-1.2 mM hydrogen peroxide. This approach might be useful for a cell selection in mixed cell populations. The problem of local protection of cells involved in the inflammation focus are discussed.

Animals↗

Efficacy of sulfhydryl compounds as inhibitors of iron-dependent doxorubicin-enhanced lipid peroxidation.

The ability of sulfhydryl compounds to inhibit doxorubicin enhanced lipid peroxidation in the presence of added iron was evaluated. Optimal conditions for doxorubicin-enhanced lipid peroxidation were 25 microM doxorubicin, 2 mM ADP and 250 microM ferric chloride at pH 8.0. Lipid peroxidation was inhibited by EDTA (500 microM), SKF 525 A (100 microM) and vitamin E (0.1 unit/ml). Cysteamine (1 mM) stimulated basal lipid peroxidation but produced net inhibition of lipid peroxidation with doxorubicin. Cysteamine (10 mM) was more efficacious at inhibiting lipid peroxidation. N-acetylcysteine at 1 and 10 mM was a potent stimulator of lipid peroxidation and was ineffective at inhibiting lipid peroxidation in the presence of doxorubicin either at optimal or suboptimal concentrations of iron. In contrast, glutathione (1 mM) was a potent inhibitor of lipid peroxidation. The data suggests that N-acetylcysteine protects against doxorubicin by prior conversion to glutathione.

Acetylcysteine↗

Inhibitory effects of anthracenedione antineoplastic agents on hepatic and cardiac lipid peroxidation.

The effects of mitoxantrone, ametantrone and a monohydroxylated anthracenedione on hepatic microsomal, cardiac sarcosomal and cardiac mitochondrial lipid peroxidation were examined and compared with those of doxorubicin and daunorubicin. Rabbit microsomal NADPH-dependent lipid peroxidation was inhibited by the anthracenediones in a concentration-dependent manner, whereas doxorubicin caused a concentration-dependent enhancement of peroxidation. Mitoxantrone and ametantrone (200 microM) completely inhibited microsomal malondialdehyde production while an identical concentration of doxorubicin caused a 2.5-fold stimulation. Rabbit cardiac sarcosomal NADPH-dependent malondialdehyde production was also abolished by 100 microM anthracenedione. Mitochondria isolated from rabbit hearts were found to support NADH-dependent lipid peroxidation. Doxorubicin produced a maximal 3-fold enhancement of mitochondrial malondialdehyde production at 25 microM. The anthracenediones however, completely inhibited mitochondrial lipid peroxidation Drug-stimulated lipid peroxidation was also effectively diminished by mitoxantrone and ametantrone in a concentration-dependent manner. Half-maximal inhibition of doxorubicin-stimulated rabbit microsomal malondialdehyde production was achieved by 4 anal 6 microM mitoxantrone and ametantrone, respectively. Furthermore this effect was not limited to anthracycline-induced lipid peroxidation. Mitoxantrone and ametantrone also protected against rat microsomal lipid peroxidation produced by nitrofurantoin, paraquat and doxorubicin, decreasing these rates by 80, 90, and 50%, respectively, at 10 microM anthracenedione. The relative inability of the anthracenediones to stimulate lipid peroxidation is consistent with the diminished cardiotoxicity of ametantrone and mitoxantrone relative to doxorubicin and daunorubicin.

Animals↗

[Changes in lipid peroxide and alpha-tocopherol levels of pregnant serum lipoproteins (author's transl)].

Lipid peroxides act harmfully on cell membranes to result in cellular dysfunction. On the other hand, vitamin E (VE) having antioxidant effect is considered to protect the generation of lipid peroxides. In this study, the changes in the levels of lipid peroxides and VE of pregnant sera were followed clinically and biochemically in relation to lipoprotein metabolism. The results obtained were as follows. 1) Lipoprotein metabolism in pregnancy was characterized by an increase in very low density lipoprotein (VLDL) which is a major carrier of triglyceride. The amount of VLDL in pre-eclamptic subjects increased more than that of normal gravidas. The ratios of HDL cholesterol/LDL cholesterol of pre-eclamptic subjects were significantly (p less than 0.01) low levels compared with those of non-gravidas. 2) The contents of lipid peroxides and alpha-tocopherol (alpha-toc) in each serum lipoprotein fraction were also elevated in pregnant subjects. Lipid peroxide levels in HDL fraction of pre-eclamptic subjects were significantly (p less than 0.005) higher than those of normal gravidas. On the contrary, the levels of alpha-toc in HDL fraction of pre-eclamptic subjects were significantly (p less than 0.005) lower than those of normal gravidas. 3) As a result of examining the correlationship between the levels of lipid components and those of lipid peroxides and alpha-toc in each lipoprotein fraction of pregnant sera, both levels of lipid peroxides and alpha-toc were positively correlated with those of major lipid components in VLDL and LDL fractions, while no significant correlation was found in HDL fraction. Also in VLDL fraction, the level of lipid peroxides was positively correlated with that of alpha-toc whereas in HDL fraction the former tends to correlate reversely with the latter. From the above observation, it is worthwhile to study on HDL fraction which is associated with cell membrane lipids and received less influence of the amounts of serum lipids, when the damage with lipid peroxides under pregnancy accompanied of hyperlipemia is examined in relation to alpha-toc.

Adult↗

Endothelial activation by hydrogen peroxide. Selective increases of intercellular adhesion molecule-1 and major histocompatibility complex class I.

Products of activated leukocytes may alter vascular endothelial cell (EC) function. For example, ECs respond to leukocyte-derived cytokines, such as tumor necrosis factor (TNF) or interleukin-1, by reversibly altering levels of expression of specific gene products that promote inflammation. In contrast, hydrogen peroxide, a product of TNF-activated neutrophils, can produce irreversible EC injury and death. In this study, we have investigated the effects of subinjurious concentrations of hydrogen peroxide on EC inflammatory functions. Treatment with 50 to 100 mumol/L hydrogen peroxide selectively increases surface expression of intercellular adhesion molecule-1 and major histocompatibility complex class I, but not endothelial leukocyte adhesion molecule-1 (also known as E-selectin), vascular cell adhesion molecule-1, or gp96, a constitutively expressed EC surface protein. Increased major histocompatibility complex class I and intercellular adhesion molecule-1 surface expression is associated with specifically increased messenger RNA levels, suggesting selective endothelial gene activation. Hydrogen peroxide does not activate the transcription factor Nuclear Factor kappa B, an important mediator of TNF-induced gene expression. Co-treatment with hydrogen peroxide inhibits TNF-induced gene expression at 4 hours, an effect which can be attributed to reversible inhibition of TNF binding to EC surface receptors. Hydrogen peroxide also antagonizes the actions of interleukin-1. At 24 hours, TNF and hydrogen peroxide produce, at most, additive increases in intercellular adhesion molecule-1 and major histocompatibility complex class I. These results suggest that subinjurious concentrations of hydrogen peroxide can activate endothelium and that the effects of hydrogen peroxide on ECs differ from those of inflammatory cytokines.

Antigens, Surface↗

NADPH-dependent lipid peroxidation capacity in unfixed tissue sections: characterization of the pro-oxidizing conditions and optimization of the histochemical detection.

Factors which influence the iron-stimulated lipid peroxidation in rat liver have been studied by incubating unfixed cryostat sections with a pro-oxidant system and using an optimized histochemical detection method for lipid peroxidation products with 3-hydroxy-2-naphthoic acid hydrazide and Fast Blue B. We used a method that was slightly different from the one described previously. The final reaction product was exclusively localized in the cytoplasm of liver parenchymal cells with a homogeneous distribution within the liver lobule. The absorbance maximum, as measured cytophotometrically, was found to be 550 nm. Maximum lipid peroxidation was observed when the pro-oxidant system contained 0.2 mM NADPH, 1 mM ADP and 15 microM FeCl2. Some reaction product was found when NADPH was omitted. Iron concentrations higher than 180 microM prevented the formation of lipid peroxidation products in certain areas of the sections, whereas ADP concentrations higher than 1 mM inhibited the reaction in the whole section. A pH dependency was also observed, with the highest lipid peroxidation at pH 7.2. Optimum lipid peroxidation was induced by incubating for 30 min at 37 degrees C with the pro-oxidant system. A linear relationship was found between the thickness of the sections (up to 20 microns) and the amount of lipid peroxidation products. The addition of scavengers of O2-. (superoxide dismutase), hydrogen peroxide (catalase) and OH. (mannitol) to the first step medium did not affect the amount of final reaction product. These findings appear to confirm the hypothesis proposed for events occurring in isolated microsomes, leading to the formation of hydroperoxides and ultimately lipid peroxidation-derived carbonyls.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Diphosphate↗

Hydrogen peroxide stimulates transcription of c-jun in vascular smooth muscle cells: role of arachidonic acid.

We reported previously that hydrogen peroxide induces DNA synthesis in rat aortic smooth muscle (RASM) cells. In the present paper we studied the mechanism by which hydrogen peroxide induces c-jun mRNA, an early response gene whose activation is required for mitogen-stimulated cell growth. Hydrogen peroxide induced c-jun mRNA in growth-arrested RASM cells in a time dependent manner. This stimulation was significantly inhibited by mepacrine, a phospholipase A2 (PLA2) inhibitor. Arachidonic acid, a PLA2 product, also increased c-jun mRNA with a time course similar to that of hydrogen peroxide. The increases in c-jun mRNA induced by hydrogen peroxide and arachidonic acid were significantly reduced (55%) by down-regulation of protein kinase C with a phorbol ester. Furthermore, the effect of hydrogen peroxide on c-jun mRNA was also reduced by NDGA, an inhibitor of the lipoxygenase-cytochrome P450 mono-oxygenase system, suggesting that metabolism of arachidonic acid through this pathway is required for the induction of c-jun mRNA by oxidants. Both hydrogen peroxide and arachidonic acid significantly increased c-jun transcription as demonstrated by nuclear run-on assays. Together these observations suggest that: (1) the induction of c-jun mRNA by hydrogen peroxide is mediated by PLA2-dependent arachidonic acid release and metabolism through the lipoxygenase-cytochrome P450 mono-oxygenase system; (2) PKC appears to be involved in this signaling pathway and (3) the induction of c-jun mRNA by hydrogen peroxide in RASM cells is due to increased transcription.

Animals↗