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Biomedical subjects

L Galzigna

Publications and source records attributed to L Galzigna.

At least 19 recordsLinked to original sources

ATP-stimulated glutamate-dependent calcium uptake by rat synaptosomes.

The entry of Ca2+ in rat synaptosomes was followed with a Ca(2+)-selective electrode. Extracellular ATP is necessary for the entry which is a function of synaptosomal protein, free Ca2+ and glutamate concentrations. Ketamine, glycine and kainate have negligible effect while quisqualate slightly inhibits the uptake of Ca2+ in the presence of glutamate. The added ATP is hydrolyzed by the synaptosomes through an ouabain-insensitive ecto-ATPase affected by the presence of Ca2+, glutamate and, to a slight extent, NMDA.

Adenosine Triphosphate

Added ATP influences some responses of rat synaptosomes to glutamate.

ATP added externally to rat synaptosomes activated uptake of both Ca2+ and glutamate which was partially accounted for by the uptake phenomena of synaptic vesicles and mitochondria, as shown by using specific inhibitors of the latter. Increasing concentrations of glutamate stimulated Ca2+ entry linearly, as shown by using 45Ca or a Ca-specific electrode. The processes of glutamate and Ca2+ uptake shared some common features and their ATP-dependence may be correlated with an ouabain-insensitive synaptosomal ectonucleotidase activity measured by a 31P-NMR or a luminometric technique. The ATP hydrolysis catalysed by the synaptosomes was activated by both Ca2+ and glutamate. The present synaptosomal activities may represent a model for studying the modulatory effects of ATP on the glutamatergic neurotransmission.

Adenosine Triphosphate

Interaction between thiopentone and subhypnotic doses of ketamine.

The hypnotic effects of thiopentone and ketamine were studied in ASA Grade I female patients aged 20-30 without premedication. The dose-response curves of ketamine 0.4 mg kg-1 and thiopentone following ketamine 0.4 mg kg-1 were determined by probit analysis. The interaction between ketamine and thiopentone was found to be an antagonistic one. This effect can be interpreted as a consequence of the different neurophysiological spectra of action of the two drugs.

Adult

2,6-diisopropylphenol, a general anesthetic, inhibits glutamate action on rat synaptosomes.

2,6-diisopropylphenol (propofol), a general intravenous anesthetic, inhibits the glutamate-dependent Ca2+ entry in rat synaptosomes with an approximate IC50 of 3.0 x 10(-5) M. Propofol, at concentrations above 10(-6) M, also inhibits the ATP-dependent uptake of glutamate in the presence of Ca2+, with an approximate IC50 of 3.5 x 10(-5) M, while it only has a slight inhibitory effect on the release of glutamate. The ouabain-insensitive synaptosomal ATPase is strongly inhibited by propofol, with an IC50 of about 2.5 x 10(-6) M, at concentrations which do not affect the luciferase system.

Adenosine Triphosphatases

Protective action of a new benzofuran derivative on lipid peroxidation and sulphydryl groups oxidation.

The antioxidant properties of a novel water-soluble antioxidant of the benzofuran family (5-hydroxy-4,6,7-trimethyl-2,3-dihydrobenzofuran-2-acetic acid, BFA) were studied. In rat liver mitochondria BFA increases the lag-time and decreases the extent of lipid peroxidation induced by ascorbate/Fe2+; an IC50 value of about 12 microM was observed. In rat liver microsomes it inhibits the lipid peroxidation induced both by NADPH/Fe2+/ADP (iron-dependent) and by cumene hydroperoxide (iron-independent), showing IC50 values of 25 and 30 microM respectively. The antioxidant efficiency of BFA is slightly higher than that of the congener compound Trolox C. BFA is also able to inhibit the oxidation of protein sulphydryl groups consequent to microsomal lipid peroxidation induced by NADPH/Fe2+/ADP. The antioxidant properties of BFA are discussed considering its hydrophilic character and pharmacological features.

Adenosine Diphosphate

Fructose-1,6-diphosphate counteracts ethanol-stimulated calcium uptake in isolated BHK cells.

Ethanol increases the uptake of 45Ca by isolated baby hamster kidney (BHK) cells in vitro. The effect is dependent on ethanol and 45Ca++ concentration and on the incubation time. Fructose-1,6-diphosphate (FDP) added at different concentration during the pre-incubation exerts a protective effect through a membrane-stabilizing action which is consistent with its in vivo anti-alcohol activity documented in previous studies.

Animals

Direct and respiratory chain-mediated redox cycling of adrenochrome.

Adrenochrome is reduced by ascorbate in a reaction accompanied by a large and rapid oxygen uptake. The rates of adrenochrome reduction and the concomitant oxygen uptake are decreased in the presence of superoxide dismutase or catalase. The species formed on the one-electron reduction of adrenochrome (i.e., the semiquinone) was shown by pulse radiolysis to rapidly react with oxygen (9.10(8) M-1.s-1), indicating the occurrence of a redox cycling in a system formed by adrenochrome, a reducing agent, and oxygen. Adrenochrome is also reduced to the corresponding semiquinone by complex I of beef heart submitochondrial particles supplemented with NADH, while succinate is unable to support this reduction. The o-semiquinone is the intermediate species in the superoxide-generating cycle resulting from both non-enzymatic and enzymatic reduction. The toxic effects of adrenochrome and its pathophysiological role can be explained, at least in part, on the basis of the demonstrated cycle.

Adrenochrome

Fructose-1,6-diphosphate as an in vitro and in vivo anti-alcohol agent in the rat.

Fructose-1, 6-diphosphate (FDP) decreases the effect of ethanol on Ca++ entry and inhibits the ethanol-stimulated phosphate efflux in rat heart slices. FDP also inhibits the ethanol-stimulated [36Cl-]-uptake by rat brain microvesicles and affects the isolated GABA-receptor in a way opposite to that of ethanol. The in vivo effects of FDP include a dose-dependent decrease in ethanol-induced gastric ulcers and a decrease in the serum transaminase levels raised by chronic ethanol administration. Other central actions of ethanol such as diuresis, narcosis, dependence and withdrawal symptoms are also counteracted by FDP.

Animals

Reduction of adrenochrome by rat liver and brain DT-diaphorase.

Liver and brain exhibit DT-diaphorase activity with adrenochrome as a substrate; the latter is an o-quinone derived from the autoxidation of adrenaline exhibiting neurotoxic and cardiotoxic properties. The reaction is strongly inhibited by dicoumarol, a classical inhibitor of DT-diaphorase. DT-diaphorase-reduced adrenochrome undergoes autoxidation as shown by the oxygen uptake occurring during the reaction. It is proposed that, physiologically, DT-diaphorase might exert a protective role by maintaining adrenochrome in its reduced, non-toxic form.

Adrenochrome

Absorption, distribution, metabolism and excretion of 2-[2-thiophenecarboxythio]-N-[dihydro-2-(3H)-thiophenone-3-yl]-propiona mide in the rat.

2-[2-Thiophenecarboxythio]-N-[dihydro-2-(3H)-thiophenone-3-y l]- propionamide (MR 889) was administered orally to rats in order to investigate its pharmacokinetics. 1-2 h after the administration, MR 889 was detected as unchanged compound in plasma only in traces whereas some catabolites, i.e. 2-thiophene carboxylic acid and its glycinate were detected with a tmax of 2 h. The thiolic component of MR 889 induced an evident and sustained increase of total sulfhydryl groups in plasma (tmax 2 h), tissues and urine. Relevant concentrations of 2-thiophene carboxylic acid were found in small intestine and gastric wall followed by liver, lungs and kidneys. The thiolic component also increased, mainly in liver and lungs followed by small intestine and gastric wall. Homocysteine thiolactone S-methyl thiolactamide was identified as a minor metabolite of MR 889.

Administration, Oral

Some effects of fructose-1,6-diphosphate on rat myocardial tissue related to a membrane-stabilizing action.

This study aims at elucidating the mechanism of action of extracellular fructose-1,6-diphosphate (FDP). FDP is able to inhibit Ca++ entry into the myocardial tissue with an IC50 value of 11.5 mM and in addition, it is bound by rat heart slices, the binding being activated by Zn and conditions of chemical hypoxia induced by KCN and iodoacetate. The overall effect of extracellular FDP includes an increase of frequency and amplitude of contraction of perfused heart at concentration below 1 mM, and, in general, a stimulation of the oxygen consumption of the tissue. The antihaemolytic effect of FDP suggests its action as a membrane stabilizer. The effects of extracellular FDP on the myocardial cell can be interpreted both on the basis of a limited permeability of the cell membrane to it and as a purely extracellular effect transduced through the cell membrane with a final response consisting of an increase in the intracellular FDP.

Animals

Synthesis and some properties of a homologous series of beta-carboline-3-carboxylic esters.

A homologous series of esters of beta-carboline-3-carboxylic acid was prepared by a new synthetic procedure. The first members of the series are convulsant or pro-convulsant agents while those with acyl residues longer than C4 show anticonvulsant activity. The affinity of the members of the series for the benzodiazepine receptor from rat brain decreases with the increasing chain length of the esters. The pentyl ester was studied in particular for its anti-convulsant effect on rats and mice treated with cardiazol. The compound also acts as a membrane stabilizer by inhibiting red cell hypotonic hemolysis and rat brain Na/K ATPase; its LD50 value is 12.5 mg/Kg and of particular interest is its lack of inhibitory effect on memory retention in mice at doses at which diazepam has inhibitory effects.

Animals

Toxicity of aminochromes.

The first part of the present review deals with the chemical and enzymatic synthesis of adrenochrome and other aminochromes from the corresponding catecholamines. A description of the most significant pathways of formation and the reactivity of the aminochromes is presented. In the second part of the toxicity of aminochromes, mainly at the cardiac and CNS level, is described and some of the molecular mechanisms of the toxic action are outlined. The toxicity of the aminochromes appears to depend mainly on the production of reduced oxygen species through redox cycling. The interaction of aminochromes with sulfhydryl groups and the induced depletion of oxygen, ascorbate and glutathione are additional mechanisms resulting in noxious effects at a cellular level.

Adrenochrome

A new synthetic peptide with elastase inhibiting effect.

A new peptide, obtained by chemical synthesis, inhibits porcine pancreatic elastase activity "in vitro" with an IC50 of 24 mmol/l. The effect of the peptide was also tested on human plasma elastase by using plasmas with different levels of alpha-1-antitrypsin. The synthetic peptide apparently decreased the amount of normal plasma elastase, assayed by an immunoenzymatic method, with a dose-dependent effect and an IC50 of 13 mmol/l. In plasma with higher amounts of alpha-1-antitrypsin the IC50 value was 18 mmol/l.

Animals

Antioxidant action and photosensitizing effects of three different chlorpromazines.

Chlorpromazine inhibits by about 60% the lipid peroxidation stimulated by Fe2+/ascorbate in liposomes and the lipid peroxidation stimulated by cumene hydroperoxide in microsomes. Under the same conditions, two new synthetic derivatives of chlorpromazine, i.e., a N-benzoyloxymethylchlorpromazine and a N-pivaloyloxymethylchlorpromazine, induce no more than a 20% inhibition. On the other hand, when the different chlorpromazines are entrapped in liposomes and subsequently irradiated with near-UV light, they act as photosensitizing agents giving rise to lipid peroxidation. The latter is quite extensive in the presence of chlorpromazine or N-pivaloyloxymethylchlorpromazine, whereas it is drastically lower in the presence of N-benzoyloxymethylchlopromazine. The N-benzoyloxymethylchlorpromazine molecule, despite its low photodynamic effect, retains its neuroleptic properties. The possible mechanisms of the antioxidant and prooxidant actions of these compounds are discussed.

Animals