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Biomedical subjects

T Schewe

Publications and source records attributed to T Schewe.

At least 37 records · Page 2Linked to original sources

Oxygenation of biomembranes by mammalian lipoxygenases: the role of ubiquinone.

15-Lipoxygenase is implicated in the selective breakdown of mitochondria during red cell maturation by virtue of its capability of directly oxygenating phospholipids. To address the reason of the selectivity for mitochondria, we studied the reaction of pure rabbit 15-lipoxygenase with beef heart submitochondrial particles in vitro. This reaction is characterised by a loss of polyenoic fatty acids, the formation of phospholipid-bound hydroperoxy- and keto-polyenoic fatty acids, and oxidative modification of membrane proteins. The total oxygen uptake exceeds the formation of oxygenated polyenoic fatty acids several times. The excessive oxygen uptake was not inhibited by 3,5-di-tert-butyl-4-hydroxytoluene or by respiratory inhibitors, but was partly suppressed by superoxide dismutase plus catalase, salicylate, or mannitol. Pentane-extraction of the submitochondrial particles abolished the excessive oxygen uptake, whereas reconstitution with ubiquinone- 50 restored it. A marked excessive oxygen uptake did not occur during the analogous reaction with erythrocyte ghosts. It is proposed that ubiquinone-50 triggers the formation of hydroxyl radicals from 15-lipoxygenase-derived hydroperoxy-lipids via a Fenton-type reaction driven by ubisemiquinone radicals. A new prooxidative function of ubiquinone in the biologically programmed degradation of mitochondria in certain types of cells is proposed.

Amino Acids↗

[Biotransformation of the lipoxygenase inhibitor 2-hydroxy-5-methyl-laurophenone-oxime (FLM 5011)].

2-Hydroxy-5-methyl-laurophenone-oxime (FLM 5011, 1) is an inhibitor of the lipoxygenase with antiinflammatory and antiallergic actions. The studies on the biotransformation using in vivo investigations and in vitro test systems resulted in finding of at least eight metabolites. Four of these compounds have been detected and identified in urine and faeces after p.o. administration in male Wistar rats. By means of cultures of hepatocytes, lymphocytes and myeloma cells additional metabolites were found and the main pathways of metabolism could be suggested. Furthermore it was possible to confirm the sequence of the metabolic reactions. First of all, 1 is hydroxylated in the omega-position of the lauryl side chain by the cytochrome P-450 system. The further oxidation to the carboxylated compound is followed by the stepwise degradation of the side chain by beta-oxidation similarly to the pathways of fatty acid metabolism. Simultaneously the oxime group is converted to the keto group. The metabolites and 1 partly occur as sulfate or glucuronide conjugates. Additionally all compounds produced by beta-oxidation are conjugated with other partners, probably amino acids. By omega-oxidation, compounds with higher inhibitory potency on the lipoxygenase than the parent compound are formed. These results suggest that the activity of 1 is partly caused by the initial metabolites.

Animals↗

3,5-Di-t-butyl-4-hydroxytoluene (BHT) and probucol stimulate selectively the reaction of mammalian 15-lipoxygenase with biomembranes.

The lipophilic antioxidant 3,5-di-t-butyl-4-hydroxytoluene (BHT) and the structurally-related antiatherogenic drug probucol stimulate the oxygenation of mitochondrial membranes and erythrocyte ghosts by the rabbit 15-lipoxygenase as indicated by an increase in oxygen consumption as well as by an enhanced loss of polyenoic fatty acids and by the formation of specific lipoxygenase products in the membrane phospholipids. The oxygenation of linoleic acid, phospholipids and human low-density lipoproteins was not stimulated. With mitochondrial membranes, BHT causes a quenching of the 1-anilino-8-naphthalene sulfonate fluorescence. Thus, it is suggested that the stimulation of membrane oxygenation may be due to structural changes in the membranes leading to a better susceptibility of the polyenoic fatty acid residues towards lipoxygenase attack. Owing to this unexpected effect of the antioxidants, which is not related to their radical-scavenger capacity, care should be taken in interpreting experimental data on effects of BHT and probucol.

Animals↗

Molecular actions of ebselen--an antiinflammatory antioxidant.

1. Ebselen (2-phenyl-1,2-benzisoselenazol-3(2H)-one) is a non-toxic seleno-organic drug with antiinflammatory, antiatherosclerotic and cytoprotective properties. 2. Ebselen and some of its metabolites are effective reductants of hydroperoxides including those arising in biomembranes and lipoproteins. 3. By reactions with hydroperoxides and thiols several interconversion cycles are formed which include ebselen metabolites with varying oxidation number of the selenium. 4. In the presence of thiols ebselen mimics the catalytic activities of phospholipid hydroperoxide glutathione peroxidase. 5. Ebselen inhibits at low concentrations a number of enzymes involved in inflammation such as lipoxygenases, NO synthases, NADPH, oxidase, protein kinase C and H+/K(+)-ATPase. The inhibitions are manifested on the cellular level and may contribute to the antiinflammatory potential of ebselen.

Animals↗

Inhibition of eicosanoid formation in human polymorphonuclear leukocytes by high concentrations of magnesium ions.

The cutaneous antiinflammatory action of Dead-Sea brine is thought to be due to magnesium ions. To elucidate their mode of action, we studied the influence of isotonic solutions containing high concentrations of Mg2+ (up to 115mM) on the formation of 5-lipoxygenase-derived eicosanoids in human polymorphonuclear leukocytes. The cells were stimulated by either ionophore A23187 or the chemotactic peptide N-formyl-L-methionyl-L-leucyl-L-phenylalanine. We observed a pronounced inhibition of the formation of leukotriene B4 and 5-hydroxyeicosatetraenoic acid from either added [1-14C] or endogenously liberated arachidonic acid. In the latter case, the sum of arachidonic acid and its oxygenation products was also markedly diminished. The inhibitory effects of Mg2+ depended in a reciprocal manner on the concentration of Ca2+ in the incubation medium. An unspecific damage to cells as reason for the inhibitory effects was excluded. Human recombinant 5-lipoxygenase was also inhibited by Mg2+ in the same concentration range (IC50 16 mM). These data suggest that high concentrations of Mg2+ inhibit the eicosanoid metabolism both at the level of the liberation of arachidonic acid and by direct inhibition of the 5-lipoxygenase enzyme.

Arachidonate 5-Lipoxygenase↗

Strong inhibition of mammalian lipoxygenases by the antiinflammatory seleno-organic compound ebselen in the absence of glutathione.

Both human recombinant 5-lipoxygenase (EC 1.13.11.34) and 15-lipoxygenase (EC 1.13.11.33, mammalian enzyme) purified from rabbit reticulocytes were inhibited in the absence of glutathione (GSH) by submicromolar concentrations of the seleno-organic compound ebselen. These concentrations were comparable to those of the enzymes. Soybean lipoxygenase-1 (EC 1.13.11.33, plant enzyme) was not inhibited, whereas prostaglandin endoperoxide synthase-1 (EC 1.14.99.1) was inhibited only at much higher concentrations of ebselen (IC50 = 37.7 +/- 4.3 microM). The action of ebselen on reticulocyte 15-lipoxygenase (IC50 = 0.17 +/- 0.01 microM) was studied in detail. Inhibition occurred instantaneously and appeared to be reversible and was largely abolished by a 20-fold molar excess of GSH over ebselen. In the presence of 1 mM GSH 50% inhibition was observed only at ebselen concentrations as high as 234 +/- 27 microM. 13S-hydroperoxy-9Z, 11E-octadecadienoic acid, the lipoxygenase product formed from linoleic acid, augmented the inhibitory effect at low concentrations and caused a partial reversal at high concentrations. A variety of derivatives or structural analogues of ebselen were also tested and proved to be either inactive or weaker inhibitors of 15-lipoxygenase. We have concluded that the potent inhibition of 15-lipoxygenase by ebselen is due neither to GSH peroxidase-like activity nor to lowering of the hydroperoxide tone. The pharmacological implications of these unique characteristics of the action of ebselen on lipoxygenases are then discussed.

Animals↗

On the reaction specificity of the lipoxygenase from tomato fruits.

A lipoxygenase was purified 300-fold from a homogenate supernatant of ripe tomato fruits by fractionated ammonium sulfate precipitation and anion exchange fast protein liquid chromatography. The specific linoleate oxygenase activity of the final enzyme preparation was 1300 nkat per mg protein at pH 6.8 and 25 degrees C in the absence of any detergent. The enzyme oxygenated linoleic acid and alpha-linolenic acid at comparable rates, whereas gamma-linolenic acid, arachidonic acid, 11,14-eicosadienoic acid and 11,14,17-eicosatrienoic acid were poor substrates. Linoleic acid was converted to 9(S)-hydroperoxy-10E,12Z-octadecadienoic acid, whereas 5(S)-HpETE, 11(S)-HpETE and 8(S)-HpETE were identified as major oxygenation products from arachidonic acid. The tomato lipoxygenase did not react with either dilinoleyl phosphatidylcholine or the lipid extract from beef heart mitochondria. The possible biological importance of the reaction of tomato lipoxygenase with arachidonic acid is discussed.

Animals↗

Inhibitory effects of sulfonated shale oils (ammonium bituminosulphonates, Ichthyols) on enzymes of polyenoic fatty acid metabolism.

The two commercial pharmaceutical preparations of ammonium bituminosulphonates, Leukichthol and Dark Ichthyol, were shown to inhibit the formation of 5S-hydroxy-6E,8Z,11Z,14Z-eicosatetraenoic acid (5-HETE) from external arachidonic acid by human polymorphonuclear leukocytes stimulated by ionophore A-23187 in a dose-dependent manner. Pure arachidonate 15-lipoxygenases from rabbit reticulocytes and soya beans, and the particulate prostaglandin endoperoxide synthase from sheep vesicular glands, were also inhibited. With the reticulocyte lipoxygenase, the Ichthyols suppressed the enzyme activity by two different mechanisms: (1) a prolongation of the lag period typical of lipoxygenase catalysis, and (2) by a lowering of the maximal enzymatic activity after the end of lag period. As expected, the first effect was reversed by the addition of the lipoxygenase product 13S-hydroperoxy-9Z,11E-octadecadienoic acid (13-HpODE). Ammonium bituminosulphonates are thus universal inhibitors of lipoxygenase activities, and the latter are of potential importance in inflammatory dermatoses.

Arachidonic Acid↗

[Ammonium bituminosulfonate (Ichthyol). Anti-inflammatory effect and inhibition of the 5-lipoxygenase enzyme].

Ammonium bituminosulphonate (Ichthyol) inhibits 5-lipoxygenase activity in human polymorphonuclear neutrophils. The inhibition is dose-dependent and occurs at non-cytotoxic concentrations of the drug. This results in a decreased release of Leukotriene B4 from polymorphonuclear neutrophils. Furthermore, when applied to the ear skin of AB/Bln mice pretreated with croton oil, Ichthyol reduces the inflammatory reaction.

Animals↗

Structure elucidation of oxygenated lipids in human atherosclerotic lesions.

Oxidative modification of low density lipoproteins and tissue lipids has been proposed to be involved in the pathogenesis of atherosclerosis. We examined human atherosclerotic lesions of various stages from fifteen victims of acute heart failure and detected substantial amounts of oxygenated fatty acids in the tissue ester lipids. The degree of lipid oxygenation correlated with the stage of advancement of the lesion. More than 85% of the oxygenated fatty acids were localized in the cholesterol esters, whereas phospholipids contained only small amounts. Structure elucidation of the oxygenation products indicated a nonspecific product pattern of various isomers of keto- and hydroxy-octadecadienoic acid. The data presented suggest an involvement of lipid peroxidation in the pathogenesis of atherosclerosis and indicate that the majority of the oxygenation products are formed via nonspecific, non-enzymatic reactions possibly initiated by the action of a 15-lipoxygenase.

Adult↗

Keto fatty acids not containing doubly allylic methylenes are lipoxygenase substrates.

The soybean lipoxygenase I oxygenates the unusual substrate 12-keto-(9Z)-octadecenoic acid methyl ester as indicated by oxygen uptake and spectral changes of the incubation mixture. The main oxygenation products have been isolated by HPLC and identified as 9,12-diketo-(10E)-octadecenoic acid methyl ester and 12-keto-(10E)-dodecenoic acid methyl ester by UV and IR spectroscopy, cochromatography with an authentic standard, gas chromatography/mass spectroscopy, and 1H NMR. In the formation of both compounds the oxygenase and hydroperoxidase activities of the enzyme appear to be involved. These data and the earlier results on the oxygenation of furanoic fatty acids (Boyer et al., 1979) indicate that the lipoxygenase reaction is not restricted to substrates containing a 1,4-pentadiene structure.

Fatty Acids↗

Do 15-lipoxygenases have a common biological role?

In contrast to the well-studied role of 5-lipoxygenase in the arachidonic acid cascade that occurs in inflammatory cells, the biological role of the related 15-lipoxygenases in the metabolism of free polyenoic fatty acids is far from clear. However, the activity of 15-lipoxygenases with more complex substrates may play a crucial role in the differentiation and maturation of certain cell types and in the oxidative modification of lipoproteins in the early stages of atherosclerosis.

Animals↗

On the mode of action of antiphlogistically active DL-omega-phenyl amino acid esters.

DL-omega-phenyl amino acid esters turned out to be inhibitors of the sheep vesicular gland prostaglandin H synthase in addition to their antiphlogistic action on the carrageenan-induced oedema of the rat paw and weak antihistaminic actions. The inhibition of the prostaglandin H synthase was dose-dependent, the inhibitory potencies were however much lower than that of indomethacin. Some but not all derivatives, such as DL-4-amino-4-phenylbutyric acid octyl ester, also caused inhibition of the pure lipoxygenase from rabbit reticulocytes and the conversion of arachidonic acid to leukotriene B4 and 5S-hydroxy-6E,8Z,11Z,14Z-eicosatetraenoic acid by human polymorphonuclear leukocytes as well as inhibition of antigen-induced release of histamine from mast cells of ovalbumin-sensibilized rats. Since no clear relations between the data of the in vitro and in vivo models were obtained, further studies on the pharmacokinetics and possible biotransformations are required.

Amino Acids↗

Inactivation of 15-lipoxygenases by acetylenic fatty acids.

The inactivation of soybean lipoxygenase-1 and of rabbit reticulocyte lipoxygenase by five selected acetylenic fatty acids was studied. In all cases the inactivation was time-consuming and depended on the concentration of the inactivator. The inactivation kinetics was measured and the data were fitted to a kinetic model based on the assumption of catalytic self-inactivation. The kinetic constants (Km-value and inactivation rate k2) calculated indicated that 7,10,13-eicosatrienoic acid was the most powerful inactivator for the soybean enzyme followed by 8,11,14-eicosatrienoic acid. The occurrence of an additional triple bond between C-4 and C-5 or between C-5 and C-6 strongly reduced the suicidal rate. With the reticulocyte enzyme, only small differences in the reactivities towards various acetylenic fatty acids have been observed.

5,8,11,14-Eicosatetraynoic Acid↗

Experience with the particulate prostaglandin endoperoxide synthase assay for testing non-steroidal antiinflammatory drugs.

A microsomal prostaglandin endoperoxide synthase preparation was obtained from sheep vesicular glands and used as a test system for non-steroidal antiinflammatory drugs. The activity was measured oxygraphically with arachidonic acid as substrate. The assay conditions were optimized with respect to the concentrations of enzyme, substrate and hydroperoxidase co-substrate as well as preincubation. The validity of the test was assessed by eight known prostaglandin H synthase inhibitors and two antiinflammatory drugs not acting on this enzyme. Sodium diclofenac proved to be the most potent inhibitor. As shown with indometacin as example the test shows a good reproducibility. The data were fitted to a kinetic mathematical model assuming two distinct inhibitor binding sites with different affinities. This model gave in most cases a good fitting of the experimental data.

Animals↗

Formation of ketodienoic fatty acids by the pure pea lipoxygenase-1.

A pure lipoxygenase from dried green pea seeds (isoenzyme 1) oxygenates linoleic acid to 9(S/R)-hydroperoxy-10E,12Z-octadecadienoic acid (9-HPODE) and 13(S/R)-hydroperoxy-9Z,11E-octadecadienoic acid (13-HPODE). Furthermore (10E,12Z)-9-keto-10,12-octadecadienoic acid (9-KODE) and (9Z,11E)-13-keto-9,11-octadecadienoic acid (13-KODE) in a ratio of 1:1 were formed. Uv-spectroscopic measurements and HPLC data indicated a hydroperoxy fatty acid: keto fatty acid ratio of about 2:1. The product mixture formed from arachidonic acid was even more complex. 15-, 11-, 9- and 5-H(P)ETE1 and their corresponding keto derivatives have been detected. The chemical structures of the compounds have been identified by HPLC analysis, by uv- and ir-spectroscopy and gas chromatography/mass spectrometry of the native compounds and their hydrogenated derivatives. The data presented indicate that a pure lipoxygenase catalyzes the formation of both hydroperoxypolyenoic fatty acids and ketopolyenoic fatty acids from linoleic acid and arachidonic acid. The possible mechanism of the formation of the keto compounds is discussed.

Arachidonic Acids↗

Inhibition of rabbit erythroid 15-lipoxygenase and sheep vesicular gland prostaglandin H synthase by gallic esters.

Gallic acid esters possessing a varying chain length of their alcohol moiety were tested for their inhibitory potencies on 15-lipoxygenase from rabbit reticulocytes and prostaglandin H synthase from sheep vesicular glands. Octyl gallate and decyl gallate proved to be the most powerful inhibitors of both enzymes showing concentrations of half-inhibition of about 0.25 mumol/l for the reticulocyte lipoxygenase and of about 25 mumol/l for the prostaglandin H synthase.

Animals↗