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G Scutari

Publications and source records attributed to G Scutari.

At least 37 records · Page 2Linked to original sources

Effects of diltiazem on liver mitochondria of rats: a reconsideration.

1. The effects of the Ca-channel blocker diltiazem (a drug of the benzothiazepine family) on bioenergetic metabolism have been assessed on isolated rat liver mitochondria. 2. Millimolar concentrations of diltiazem induced a decrease of both the ADP- and the uncoupler-stimulated respiration and a concomitant slight increase of the resting respiration. 3. Under the same experimental conditions diltiazem decreased the transmembrane electrical potential while leaving calcium uptake unaffected. 4. Micromolar concentrations of diltiazem, which are close to therapeutic haematic levels, were without effect.

Animals↗

Biochemical and morphological observations on rat liver and kidneys six months after intravenous injection of a perfluorocompound emulsion.

The histological appearance of liver and kidneys and the energy metabolism of isolated liver and kidney mitochondria were evaluated in rats 6 months after intravenous administration of 1 ml of a perfluorocompound emulsion. Both liver and kidney specimens showed neither significant histological alteration nor the presence of intracytoplasmic perfluorocompound particles. A substantial depression of the rate of ATP synthesis was observed both in liver and kidney isolated mitochondria (with respect to control mitochondria) although the magnitude of the transmembrane electrical potential was unaltered. The depression of ATP synthesis in mitochondria isolated from perfluorocompound-treated rats appeared then unrelated to the presence of perfluorocompound micelles within the cells, and might result from the interaction of either the perfluorocompound or the emulsifying agent with the mitochondrial ATP synthetase.

Adenosine Triphosphate↗

Uncoupling effect of the general anesthetic 2,6-diisopropylphenol in isolated rat liver mitochondria.

2,6-Diisopropylphenol, a general anesthetic, was previously reported to reduce the transmembrane electrical potential in isolated rat liver mitochondria without affecting the rate of ATP production. This effect appeared to contrast with the generally accepted chemiosmotic mechanism for oxidative phosphorylation. In this study we further examined the influence of 2,6-diisopropylphenol on the production of ATP by isolated mitochondria and we studied its effect on the permeability of the inner mitochondrial membrane to protons. In order to clarify the effects of 2,6-diisopropylphenol on mitochondrial ATP production the activities of the adenine nucleotide translocator and the ATP synthetase were evaluated. The results obtained indicate that the depression of the transmembrane electrical potential elicited by 2,6-diisopropylphenol decreased the activity of the ATP synthetase (as expected in the chemiosmotic model for energy coupling), but not that of the adenine nucleotide translocator. The decrease of the ATP synthetase activity, however, did not result in an apparent inhibition of the overall rate of ATP production in isolated mitochondria due to the rate-limiting effect of the adenine nucleotide translocator in this process. Moreover 2,6-diisopropylphenol was found to increase the permeability to protons of the inner mitochondrial membrane; this effect became more marked as the pH of the incubation medium was increased, demonstrating that it involved the dissociated form of 2,6-diisopropylphenol. These observations suggested that 2,6-diisopropylphenol affected oxidative phosphorylation by acting as a mild protonophore and that its effectiveness was limited by the low fraction of phenol dissociated at near-physiological pH.

ATP Synthetase Complexes↗

Influence of the anesthetic 2,6-diisopropylphenol on the oxidative phosphorylation of isolated rat liver mitochondria.

Isolated rat liver mitochondria have been incubated in the presence of the general anesthetic 2,6-diisopropylphenol (0-100 microM) and the efficiency of oxidative phosphorylation has been evaluated by measuring the respiratory rates, the rates of ATP synthesis or hydrolysis and the magnitude of the transmembrane electrical potential. The results obtained indicate that: (a) in mitochondria energized either by succinate or by ATP, 2,6-diisopropylphenol decreased the transmembrane electrical potential and increased the rates of either electron transfer or ATP hydrolysis; (b) in succinate-energized mitochondria 2,6-diisopropylphenol, at concentrations causing substantial depression of the transmembrane electrical potential, did not modify either the rate of phosphorylation of added ADP or the rate of ADP-stimulated respiration: (c) in succinate-energized mitochondria 2,6-diisopropylphenol caused a concentration-dependent inhibition of the uncoupler-stimulated rate of succinate oxidation. These findings suggest that under the experimental conditions reported 2,6-diisopropylphenol affected the generation and/or maintenance of the transmembrane electrical potential while leaving unchanged the coupling between the electron flow in the respiratory chain and the synthesis of ATP.

Adenosine Triphosphate↗

Techniques for experimental rat kidney (and liver) perfusion.

The technique described here allows to perfuse in situ either the left kidney alone, both kidneys or both kidneys and the liver of rats with few operations, without danger of organs damage and with a good control of temperature and pressure. This technique allows a good maintainance of the metabolic activity of the perfused tissues and offers the possibility to collect urine by cannulating the bladder.

Animals↗

Energetic behaviour of mitochondria isolated from rat livers perfused with a perfluorodecalin + N,N-perfluorodiethylcyclohexylamine emulsion.

Rat livers have been perfused with a saline control medium or with a perfluorocarbon emulsion containing perfluorodecalin and N,N-perfluorodiethylcyclohexylamine, and the respiratory rates and transmembrane electrical potentials of mitochondria isolated following perfusion have been evaluated. The results indicate that the perfluorocarbon emulsion used, by providing a good oxygen supply to the perfused liver, allowed to preserve the efficiency of mitochondrial oxidative phosphorylation.

Adenosine Triphosphate↗

General anesthetics: interferences with some mitochondrial energy-dependent mechanisms.

The anesthetics halothane, enflurane, isoflurane and 2,6-diisopropylphenol negatively affect several energy-linked processes in isolated rat liver mitochondria, decreasing their efficiency. The adverse effects observed in the presence of halothane, enflurane and 2,6-diisopropylphenol are similar for many aspects although, being caused by anesthetics having different molecular structures, they differ significantly from the quantitative point of view. A relevant role in the anesthetic-induced mitochondrial injuries appears to be played by long-chain acylCoA, whose level is markedly increased in mitochondria incubated in the presence of halogenated anesthetics. In addition, the amount of intramitochondrial calcium may also influence the severity of these injuries.

Anesthetics↗

The inhibition of calcium efflux from rat liver mitochondria by halogenated anesthetics.

The halogenated anesthetics halothane, enflurane and isoflurane inhibit the calcium efflux induced by Ruthenium Red in isolated rat liver mitochondria. The extent of the inhibition is higher for enflurane (approximately 50%) than for either isoflurane (approximately 35%) or halothane (approximately 15%), and does not increase significantly between 0.1 and 0.6-1.0 mM anesthetic. Both the mitochondrial respiratory rate and transmembrane electrical potential are unaffected by the halogenated anesthetics concentrations capable to inhibit the efflux of calcium.

Animals↗

L-carnitine effect on halothane-treated mitochondria.

Addition of halothane to the incubation medium is shown to lower respiratory control and transmembrane potential and to increase ATPase activity in isolated rat liver mitochondria. Evidence is presented that L-carnitine is able to substantially decrease the negative effects of halothane on the energy-linked processes of mitochondria. The effects of halothane and the protective action of L-carnitine are discussed in the light of a possible involvement of long-chain acyl CoA in the unpairing of mitochondrial energy-linked functions.

Acyl Coenzyme A↗

Involvement of long-chain acyl CoA in the antagonistic effects of halothane and L-carnitine on mitochondrial energy-linked processes.

Incubation of rat liver mitochondria in the presence of halothane induced a consistent impairment of mitochondrial oxidative phosphorylation without significantly affecting the steady-state of transmembrane electrical potential. These alterations of mitochondrial energy-linked processes were associated with a consistent accumulation of long-chain acyl CoA. Addition of L-carnitine partially prevented the effects of halothane on oxidative phosphorylation and completely abolished the halothane-induced long-chain acyl CoA accumulation. The possibility is discussed that the damaging action of halothane on mitochondrial functions might be partially ascribed to the noxious action of the excess of long-chain acyl CoA induced the anesthetic.

Acyl Coenzyme A↗

The effect of portocaval shunt on hepatic glycogen stores during fasting.

The effect of a prolonged fast was studied in surgically portocaval shunted (PCS) rats. This shunt excludes the liver from the direct effect of pancreatic and enteric hormones, thus facilitating the study of the biochemical and metabolic effects of these hormones. In portocaval shunted rats, liver glycogen was lower than that of control rats, and remained unaffected during fasting. No remarkable difference was observed in blood glucose, plasma and liver free fatty acids and blood ketone bodies. Among blood nitrogen compounds, total protein, alanine and urea did not show any significant variation, while, in PCS rats, the initial low levels of creatinine resulted in an increase after fast. Skeletal muscle protein decreased only slightly in control rats, while their loss was remarkable in PCS rats. The possibility of a differential activation of gluconeogenesis and glycogenolysis in control and PCS rats is discussed.

Animals↗