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[Adrenoreceptor-independent effect of thyroxine and adrenoxyl on myocardial adenyl cyclase activity and cAMP levels].

A study was made of the effect of different concentrations of noradrenaline, adrenaline, adrenoxyl (stabilized adrenochrome) and thyroxin on the adenylate cyclase activity and cAMP content in the myocardium of intact animals and in neurogenous affections of the myocardium. It was shown that the content of cAMP in the myocardium drops in neurogenous affections and that thyroxin or adrenoxyl in combination with beta-adrenoblockers (propranolol) might be used for the recovery of the cAMP content and adenylate cyclase activity.

Adenylyl Cyclases↗

The biosynthesis of prostaglandins by brain tissue in vitro.

Brain tissue slices in vitro synthesize both PGF2alpha and PGE2 from endogenous precursors at almost linear rates over the first hour. PGF2alpha biosynthesis predominates except for the cat cerebellum. Catecholamines and adrenochrome greatly activate the formation of PGF2alpha in slices and homogenates. The mechanism appears related to endoperoxide reduction rather than increased availability of precursor. The arachidonic acid for prostaglandin biosynthesis in slices is derived from an intracellular pool that forms immediately after animal death and is sufficient to saturate by cyclooxygenase completely and account for the linear kinetics. Biosynthesis of prostaglandins in vivo must be orders of magnitude less than that found in vitro, unless there is local tissue damaged. PGF2 alpha catabolism by cerebral cortex is very small; however, PGE2 is converted to PGF2alpha by brain slices by a 9-keto reductase activity in significant amounts when added in pharmacological amounts.

5,8,11,14-Eicosatetraynoic Acid↗

Enhanced chemiluminescence of lucigenin with epinephrine in cationic surfactant micelles containing periodate.

Epinephrine (EP) species involved in the lucigenin chemiluminescence (CL) were identified in alkaline solution by comparing the time course of the CL response and the formation of EP oxidation products. EP quinone and adrenolutine (AL) were found to be responsible for the lucigenin-CL reaction. The mechanism of the lucigenin-CL enhancement was investigated using cationic micellar hexadecyltrimethylammonium hydroxide (CTAOH), periodate, and a mixture of micellar CTAOH and periodate. The CL enhancement in the presence of micellar CTAOH and periodate could be explained in terms of increases in the oxidation rate of EP to EP quinone and the intramolecular oxidation rate of adrenochrome to AL.

Acridines↗

Toxicology update: the cardiotoxicity of the oxidative stress metabolites of catecholamines (aminochromes).

This toxicology update reviews the oxidative stress metabolites of catecholamines, postulated to be the biochemical initiators of cardiotoxicity. A brief overview of catecholamine metabolism is provided with several noteworthy historical observations relating to the autoxidation and rearrangement of epinephrine. The basic chemical and physical properties of adrenochrome and adrenolutin are discussed. The autoxidative, enzymatic and cellular basis for the transformation of catecholamines to oxidative metabolites is reviewed. Mechanisms seeking to account for the observed cardiotoxic changes in isolated heart perfusion studies and in vivo models are described.

Catecholamines↗

Acute lindane intoxication: a study on lindane tissue concentration and oxidative stress-related parameters in liver and erythrocytes.

Treatment of rats with daily doses of 20 mg of lindane/kg for 3 consecutive days led to the accumulation of the insecticide in several tissues, including erythrocytes and liver. Lindane did not alter the hematocrit and hemoglobin concentration but reduced methemoglobin levels by 17%. Red blood cells from controls and lindane-treated rats, exposed to t-butyl hydroperoxide, exhibited comparable rates of oxygen uptake and visible chemiluminescence, whereas the induction period that precedes oxygen uptake was significantly enhanced in the latter group. Lindane treatment did not modify the activity of erythrocyte glutathione peroxidase, glucose-6-phosphate dehydrogenase, catalase, and methemoglobin reductase, being the total content of glutathione and superoxide dismutase activity significantly increased. The liver from lindane-treated rats showed an enhanced microsomal pro-oxidant activity, evidenced by higher cytochrome P450 content and NADPH-cytochrome c reductase and NADPH oxidase activities. The higher enzyme activities led to an increased superoxide anion generation (adrenochrome formation) and lipid peroxidation (measured either by the production of thiobarbituric acid reactants and spontaneous visible chemiluminescence). Concomitantly, liver glutathione content and the activity of glutathione peroxidase-glutathione reductase couple were augmented by lindane treatment, without any change in superoxide dismutase activity, together with a reduction in that of catalase. Results suggest that lindane does not alter the prooxidant/antioxidant status of the erythrocyte in conditions of a significant cellular accumulation of the insecticide, which might exert direct action on enzymatic systems leading to enhanced superoxide dismutase activity and glutathione content.(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue↗

Stability-indicating high-performance liquid chromatographic analysis of lidocaine hydrochloride and lidocaine hydrochloride with epinephrine injectable solutions.

A reversed-phase, high-performance liquid chromatographic (HPLC) procedure, which is specific and quantitative for lidocaine hydrochloride, epinephrine, and methylparaben, was developed for the analysis of lidocaine hydrochloride and lidocaine hydrochloride with epinephrine solutions for injection. Epinephrine sulfonic acid and adrenochrome are separated in this system. Also separated are lidocaine and methylparaben and their respective degradation products, 2-6-xylidine and p-hydroxybenzoic acid. The analysis requires that three detectors (two UV and one electrochemical) be connected in series. By using this arrangement, lidocaine hydrochloride and methylparaben are quantitated by UV at 254 and 280 nm, respectively, while epinephrine is quantitated electrochemically. The method is simple, accurate, precise, and rapid. No sample preparation or internal standard is necessary, and only a 2-microliter sample volume is required for analysis. Chromatographic conditions include a mu Bondapak CN column and a mobile phase of 0.01 M 1-octanesulfonic acid sodium salt, 0.1 mM edetate disodium, 2% acetic acid, 2% acetonitrile, and 1% methanol in water.

Chromatography, High Pressure Liquid↗

Glutathione S-transferase M1 gene deletion may be associated with susceptibility to certain forms of schizophrenia.

Recent studies have revealed that GSTM1 and M2 of the mu-class glutathione S-transferases catalyze a glutathione conjugate of catechol o-quinones including dopachrome, noradrenochrome, and adrenochrome under physiological conditions. Reduced or negative levels of activity amongst these enzymes would lead to an excess of neurotoxic compounds of catecholamine o-quinones. A defect in the mechanisms responsible for this form of detoxification may contribute to the development of certain forms of schizophrenia. We have performed a case-control study to explore the association between schizophrenia and polymorphism of the GSTM1 gene. DNA samples were obtained from 87 unrelated patients with schizophrenia who met the DSM-IV criteria for schizophrenia and from 176 control subjects. Individuals of both groups were ethnically Japanese and were from the same district. GSTM1 polymorphism was determined using the polymerase chain reaction method. The frequency of the GSTM1*0 allele was significantly higher amongst the patients with schizophrenia compared to controls (P = 0.0075). Moreover, the incidence of the GSTM1*0 was significantly higher amongst the schizophrenic patients classified as disorganized type (P = 0.0008), relative to the control sample. Our findings suggest that the GSTM1*0 is associated with an increased susceptibility to schizophrenia, particularly disorganized type of the disease. It is therefore likely that the GSTM1 gene deletion constitutes to vulnerability for disease states of this kind, rather than being the direct cause of schizophrenic conditions.

Adult↗

Determination of catecholamine permeability coefficients for passive diffusion across phospholipid vesicle membranes.

A convenient catecholamine transport assay has been developed which permits continuous, instantaneous monitoring of transmembrane flux. Epinephrine transport has been examined by spectrophotometrically monitoring adrenochrome formation resulting from the passive diffusion of catecholamine into unilamellar phospholipid vesicles containing entrapped potassium ferricyanide. Ferricyanide oxidation of epinephrine under the conditions employed is fast compared to membrane transport, which obviates the need for intravesicular concentration or volume determinations. Epinephrine transport data over a pH 6 to 7 range have been fitted to an integrated rate equation from which a permeability coefficient for neutral epinephrine of 2.7 1.5 X 10-6 cm/sec has been obtained.

Epinephrine↗

A metabolite of carcinogenic 2-acetylaminofluorene, 2-nitrosofluorene, induces redox cycling in mitochondria.

The present study was designed to confirm the recent proposal that 2-nitrosofluorene (2-NOF) as well as N-hydroxy-2-aminofluorene (N-OH-AF) induce a redox-cycle in rat liver mitochondria as part of the chronic toxic effects of the carcinogen 2-acetylaminofluorene (2-AAF). The formation of O2.- was demonstrated in submitochondrial particles by the formation of adrenochrome with NADH and succinate as respiratory substrates. 2-NOF was as effective as paraquat, a known redox-cycler, the lowest effective concentration being 0.4 nmol 2-NOF/mg protein. Experiments with isolated mitochondria showed that 2-NOF, in contrast to N-OH-AF, induces cyanide-resistant O2 consumption only in the presence of respiratory substrates, indicating that the reduction, but not the reoxidation, depends on a continuous flow of electrons through the respiratory chain of the mitochondrial membrane. Lipid peroxidation was estimated by the formation of thiobarbituric-acid-reactive substances. In comparison to the well-known prooxidant tert-butylhydroperoxide, 2-NOF was not significantly active. The results support the notion that 2-NOF induces oxidative stress by mitochondrial redox-cycling in vivo. Effects other than lipid peroxidation seem to be important for the chronic toxicity of 2-AAF.

2-Acetylaminofluorene↗

NAD(P)H oxidation elicits anion superoxide formation in radish plasmalemma vesicles.

Radish plasmalemma-enriched fractions show an NAD(P)H-ferricyanide or NAD(P)H-cytochrome c oxidoreductase activity which is not influenced by pH in the 4.5-7.5 range. In addition, at pH 4.5-5.0, NAD(P)H elicits an oxygen consumption (NAD(P)H oxidation) inhibited by catalase or superoxide dismutase (SOD), added either before or after NAD(P)H addition. Ferrous ions stimulate NAD(P)H oxidation, which is again inhibited by SOD and catalase. Hydrogen peroxide does not stimulate NADH oxidation, while it does stimulate Fe2+-induced NADH oxidation. NADH oxidation is unaffected by salicylhydroxamic acid and Mn2+, is stimulated by ferulic acid, and inhibited by KCN, EDTA and ascorbic acid. Moreover, NADH induces the conversion of epinephrine to adrenochrome, indicating that anion superoxide is formed during its oxidation. These results provide evidence that radish plasma membranes contain an NAD(P)H-ferricyanide or cytochrome c oxidoreductase and an NAD(P)H oxidase, active only at pH 4.5-5.0, able to induce the formation of anion superoxide, that is then converted to hydrogen peroxide. Ferrous ions, sparking a Fenton reaction, would stimulate NAD(P)H oxidation.

Cell Membrane↗

Inhibition of human brain dihydropteridine reductase [E.C.1.6.99.10] by the oxidation products of catecholamines, the aminochromes.

Dihydropteridine reductase from human brain has been purified to homogeneity using a naphthaquinone affinity column followed by chromatography on a 5'-AMP-Sepharose column. Contrary to earlier findings, dopamine (I), noradrenaline (II), and adrenaline (III) do not inhibit this enzyme at concentrations below 200 microM, but their oxidation products, the respective aminochromes (IV, V and VI) are inhibitors. The Ki values for adrenochrome (VI) are reported.

Benzopyrans↗

Activation of misonidazole by rat liver microsomes and purified NADPH-cytochrome c reductase.

Rat liver microsomes and purified NADPH-cytochrome c reductase metabolized [14C]misonidazole anaerobically to a reactive intermediate that covalently binds to tissue macromolecules. Air strongly inhibited the binding whereas carbon monoxide had no effect, indicating that misonidazole is activated via reduction and not by cytochrome P-450-dependent oxidation. Both systems showed an absolute requirement for NADPH and were stimulated by flavine (FAD) and paraquat. The apparent Km for misonidazole binding to microsomal protein was 0.74 mM the apparent Vmax was 0.64 nmole 14C bound . mg-1 . min-1. At a single substrate concentration, nitrofurantoin, nitrofurazone and desmethylmisonidazole inhibited the covalent binding of misonidazole to microsomal protein by 47, 26, and 38% respectively. The effect of nitrofurantoin on the kinetics of misonidazole binding gave a complex interaction indicative of uncompetitive inhibition. Glutathione reduced the binding of misonidazole to microsomal protein below the level observed for boiled microsomes while ascorbic acid had no effect. Compared to nitrofurantoin and paraquat, misonidazole was a poor stimulator of superoxide production as measured by adrenochrome formation.

Animals↗

Catalysis of nitrofuran redox-cycling and superoxide anion production by heart lipoamide dehydrogenase.

Heart lipoamide dehydrogenase (LADH) catalyzed redox-cycling and O2-. production by (5-nitro-2-furfurylidene)amino derivatives using NADH as electron donor. NADH was a much more effective electron donor than NADPH for the nitroreductase activity. O2-. production was demonstrated by cytochrome c reduction, adrenochrome formation and the effect of superoxide dismutase. Under optimum conditions, nitroreductase activity was about 1% of LADH activity. One electron oxygen reduction and NADH oxidation correlated in 2:1 stoichiometry. The nitroreductase kinetics was in accordance with an ordered bi-bi mechanism. Nitrofuran derivatives bearing unsaturated five- or six-membered nitrogen heterocycles were more effective substrates than those bearing other groups, namely nifurtimox, nitrofurazone, nitrofurantoin and 5-nitro-2-furoic acid. Other nitro compounds (chloramphenicol, benznidazole, 2-nitroimidazole and 5-nitroindole) were ineffective. With the triazole, traizine and imidazole nitrofuran derivatives, the nitroreductase pH curve showed a maximum at pH 8.8, different from the pH optimum for the lipoamide reductase and diaphorase activities. Spectroscopic observations demonstrated pH-dependent structural changes in the triazole(I) and triazine derivatives which would affect their behavior as nitroreductase substrates. The nitroreductase activity was inhibited by p-chloromercuribenzoate and enhanced by cadmium and arsenite, whereas the NADH-induced LADH inactivation failed to affect the nitroreductase activity. In the absence of oxygen. LADH catalyzed nitrofuran reduction to products more reduced than the nitroanion, which were not reoxidized by oxygen. The anaerobic nitrofuran reduction was inhibited by cadmium and arsenite. The assayed nitrofuran compounds did not inhibit LADH lipoamide reductase activity, at variance with their action on glutathione reductase (Grinblat et al., Biochem Pharmacol 38: 767-772, 1989).

Animals↗

Effects of oxygen free radicals on isolated cardiac myocytes from guinea-pig ventricle: electrophysiological studies.

Free oxygen radicals are formed during early reperfusion and are thought to contribute to some types of reperfusion abnormalities, including arrhythmias and myocardial stunning. The purpose of this study was to investigate electrophysiological effects of oxygen free radicals using voltage clamped single ventricular myocytes from guinea-pig hearts. Oxygen free radicals were produced enzymatically by the direct addition of xanthine oxidase (XOD, 0.04 U/ml) in the experimental chamber to a solution containing hypoxanthine (0.96 mM). The generation of oxygen radicals was confirmed by the formation of adrenochrome from adrenaline. Oxygen radicals caused automaticity of isolated myocytes within 20-30 min, followed by later hypercontracture. The percentage of rod-shaped cells declined sigmoidally as a function of time, with a half maximal value at 40.9 +/- 1.6 min, and a Hill slope of -0.10 +/- 0.01 (n = 26). These effects were prevented by a combination of superoxide dismutase (10(5) U/L) plus catalase (10(6) U/L). The rate at which cells underwent morphological shape changes was unchanged by ryanodine (0.5 microM) which is thought to act on the sarcoplasmic reticulum or by the Ca2+ channel blockers nisoldipine (1 microM) or Cd2+ (30 microM). Cellular automaticity and hypercontracture were delayed by variable degrees, and sometimes completely prevented, by zero (1 mM EGTA) extracellular Ca2+, MnCl2 (2 mM) and LaCl3 (50 microM), and amiloride (1 mM). On the other hand, in the presence of a low extracellular Na+ (30 mM) or caffeine (10 mM), hypercontracture occurred at a faster time scale. Whole cell voltage clamping revealed a decrease of the inward rectifying K+ current (IK1), and a decrease of the peak of the L-type Ca2+ current (ICa,L). The total ICa,L during the clamp step was increased, mainly because of an increased time constant of inactivation (47.6 +/- 4.7 ms to 72.7 +/- 15.5 ms after 30 min, n = 4, P less than 0.05). We conclude that oxygen radicals cause automaticity and hypercontracture of isolated myocytes, that these effects may be due to an increased intracellular Ca2+ concentration ([Ca2+]i), and despite an increased ICa,L, that the enhanced Ca2+ influx may occur predominantly via the Na/Ca exchange.

Animals↗

Lipid peroxidation in rats intoxicated with 3-nitropropionic acid.

Using an electron spin resonance technique, free radical signals were observed to be increased in liver of rats 15, 30 and 45 min after orally dosing with 80 mg/kg 3-nitropropionic acid (3-NPA). Concentrations of 3-NPA from 595 to 2380 mg/litre enhanced the formation of adrenochrome from adrenaline in mitochondria and microsome suspensions of liver and brain. The activities of superoxide dismutase (SOD) and glutathione peroxidase (GSH-PX) as well as the content of malonidialdehyde (MDA) were significantly increased in liver of rats dosed with 80 mg/kg 3-NPA. There was also a cerebral increase of activity of SOD and content of MDA. These results suggest that 3-NPA is able to produce lipid peroxidation both in vivo and in vitro.

Administration, Oral↗

Regulation of nerve growth factor secretion in L-M cells by catechol derivatives.

We investigated the mechanism responsible for the stimulation of nerve growth factor (NGF) secretion by catechol derivatives in L-M cells, using L-threo-3,4-dihydroxyphenylserine (L-DOPS). Treatment of the cells with L-DOPS increased the NGF content in the L-M cell medium by approximately 3-fold. This stimulatory effect was not blocked by a decarboxylase inhibitor, or by alpha- or beta-adrenergic blockers. Intracellular cAMP levels were not changed by exposure to L-DOPS. The antioxidants, ascorbic acid and sodium pyrosulfite, completely prevented the stimulatory effect of L-DOPS, and radical scavengers (superoxide dismutase plus catalase) caused a significant partial inhibition of the response to L-DOPS. Quinone derivatives (adrenochrome, 4-n-propyl-1,2-benzoquinone), which are the oxidative products of the catechol derivatives, increased the NGF content in the medium, and their potency was greater than that of the catechol derivatives themselves. These findings suggest that L-DOPS and other catechol derivatives might be oxidized in the medium to form quinone derivatives, and that it is these which predominantly express a stimulatory effect on NGF secretion by a novel cAMP-independent mechanism in L-M cells.

Animals↗

Pharmacological analysis of guinea-pig macrophage chemiluminescence responses to platelet activating factor and opsonized zymosan.

The luminol-dependent chemiluminescence (CL) response in vitro of guinea-pig C. parvum-activated peritoneal macrophages to platelet activating factor (PAF) has been compared with that to opsonized zymosan (OpZ). The response to PAF (5 X 10(-6) mol/l.) reached a peak within 1 min, that to OpZ (0.17 mg/ml) within 10-20 min. Peak responses to both stimuli were dose-dependently inhibited in a similar manner by p-hydroxymercuribenzoate (10(-5) - 10(-3) mol/l), sodium benzoate (10(-5) - 10(-3) mol/l.) and quinacrine (10(-6) - 10(-3) mol/l.). In contrast, the xanthine oxidase inhibitor allopurinol (IC50 vs OpZ, 220 mumol/l.; vs PAF greater than 1000 mumol/l.), the methylation-inhibiting combination homocysteine + 3-deazaadenosine (IC50 vs OpZ, 22 mumol/l.; vs PAF greater than 100 mumol/l.), the phospholipase A2 inhibitor and alkylating agent p-bromophenacylbromide (pBPB; IC50 vs OpZ, 2.6 mumol/l.; vs PAF 15 mumol/l.) and the beta-adrenoceptor agonist isoprenaline (IC50 vs OpZ, 0.1 mumol/l.; PAF greater than 10 mumol/l.) all exerted differential inhibitory effects on the CL responses to the two stimuli, though colour quenching by adrenochrome cannot be ruled out in the differential effect of isoprenaline. In screening studies, carried out with CL responses measured 2 or 5 min after PAF and OpZ, respectively, verapamil (less than or equal to 10(-4) mol/l.), trifluoperazine (less than or equal to 10(5) mol/l.) EDTA (less than or equal to 10(6) mol/l.), mannitol (less than or equal to 10(-2) mol/l.), metyrapone (less than or equal to 10(-5) mol/l.), SQ 22536 (less than or equal to 10 micrograms/ml.), iso-butyl methylxanthine (less than or equal to 10(-5) mol/l.).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗