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Biomedical subjects

G Lenaz

Publications and source records attributed to G Lenaz.

At least 163 records · Page 9Linked to original sources

Effect of ubiquinone-homologs on the sensitivity of mitochondrial ATPase to energy transfer inhibitors.

Short-chain ubiquinone (UQ-3) abolishes oligomycin sensitivity of ATPase in submitochondrial particles and the effect is reversed by long-chain ubiquinone (UQ-7). Ubiquinone-3 also abolishes DCCD sensitivity of ATPase in submitochondrial particles but the effect is not reversed by long-chain ubiquinones. These data suggest that ubiquinone interferes with energy transfer process by interaction with mitochondrial ATPase.

Adenosine Triphosphatases↗

Partition of CoQ-homologs in lipid membranes.

After studies on incorporation of Coenzyme-Q-homologs into mitochondrial membranes, we have undertaken the same investigation on phospholipid vesicles in order to know the behavior of different Ubiquinones in the biphasic system lipid membrane/H2O. Using concentrations of egg lecithin corresponding to the phospholipid content of 1 mg mitochondrial protein, it was found that some homologs are partitioned in lipid vesicles nearly the same as they are incorporated by mitochondria, while others behave differently. On the basis of the results it is possible to calculate approximately partition coefficients for each Q-homolog. This work shows that also membrane structure, besides the partition membrane/water, affects the incorporation of Ubiquinones.

Animals↗

Studies on incorporation of CoQ-homologs in mitochondrial membranes.

In this work we have made a systematic study on the incorporation of different homologs of Coenzyme Q in mitochondrial membranes. We have used a diluted mitochondrial suspension constituting a biphasic system membrane/H2O in which exogenous Q will be distributed depending on its water solubility and on its affinity to the mitochondrial membrane. It was found that Ubiquinones are incorporated into mitochondria in different extents ranging from zero (Q1) to 10 fold (Q10) the concentration of endogenous Q per mg of mitochondrial protein. In Q-depleted mitochondria the extents of incorporation are greater for all the quinones. This study points out that there is a reflection between the isoprenoid units of each Q-homolog and its incorporation into mitochondrial membranes.

Animals↗

Lipid protein interactions in mitochondria. VII. A comparison of the effects of lipid removal and lipid perturbation of the kinetic properties of mitochondrial ATPase.

We investigated the kinetics of mitochondrial ATPase in bovine heart mitochondria and submitochondrial particles upon treatment with phospholipase A2, or upon addition of n-butanol to perturb the lipid protein interactions. The changes observed are the following: (1) Lipid removal or perturbation with butanol is accompanied by loss of ATPase activity with decrease of both V and of the KM for ATP. (2) There are changes of activation energy of ATPase activity at temperatures above the discontinuity normally observed for membrane-bound enzymes in mitochondria. In particular, butanol abolishes the discontinuity, and induces a constant activation energy of about 32 kcal/mol in the range 8--37 degrees C. (3) Butanol modifies the pH dependence of ATPase shifting the pH optimum from around 10 to less alkaline values. The optimum for Mg2+ concentrations is increased by the solvent. (4) Treatment with phospholipase A2 results in a removal of oligomycin-sensitive ATPase, whereas butanol addition prevents oligomycin inhibition of ATPase. (5) In beef heart mitochondria, a spin-labelled analog of the inhibitor, dicyclohexyl carbodiimide, did not show any change in environment upon butanol addition, unlike that found in mitochondria from Saccharomyces cerevisiae.

Adenosine Triphosphatases↗

Progressive muscular dystrophy type Duchenne. I. Spin label studies on the physico-chemical state of erythrocyte membranes.

Electron spin resonance studies of erythrocyte membranes from patients with Duchenne muscular dystrophy exhibit changes in the physical state of lipids and proteins in membranes when compared to membranes from normal subjects. The results suggest that the alterations in membrane lipid-protein organization are present in this disease.

Electron Spin Resonance Spectroscopy↗

Progressive muscular dystrophy type Duchenne. II. Viscosity and resistence to erythrolytic compounds of erythrocyte membranes.

The transition temperature of erythrocyte ghosts of normal subjects is about 18-20 degrees C. We have studied the viscosity of erythrocyte ghosts of dystrophic children, showing that the transition shifts to lower temperatures (17-18 degrees C). After treatment with erythrocytic compounds like L-Lyso phosphatidyl-Choline dystrophic erythrocytes hemolize at lower Lysophosphatidyl-Choline concentration and at a greater extents than these of normal and carriers subjects.

Erythrocyte Membrane↗

A role of ubiquinone in energy conservation in mitochondria.

Short chain ubiquinones (Q-3) uncouple oxidative phosphorylation in rat heart mitochondria, as shown by polarimetric experiments, and abolish P:O ratios in succinate driven oxidative phosphorylaton. The uncoupling is reversed by long chain ubiquinones (Q-7). Furthermore, short chain ubiquinones abolish oligomycin sensitivity of ATPase; the inhibition is restored by Q-7. The extraction of endogenous ubiquinone from mitochondria reversibly lowers oligomycin sensitivity of ATPase.

Animals↗

Molecular mechanism of general anesthesia: II. Spin label studies on synaptic membranes.

In this communication we report the effects of general anesthetics on the mobility and order of spin labeled stearic acid derivatives in synaptic membranes and in bilayers formed from the lipids extracted therefrom. The anesthetics studied abolish the immobilization induced by synaptic membrane proteins on the membrane lipids : this effect, observed particularly in the bilayer core, is interpreted as a labilization of lipid-protein interactions induced by anesthetics.

Anesthesia, General↗

Molecular mechanism of general anesthesia: I. Fluorescence studies in mitochondrial membranes.

We have tested the working hypothesis that anesthetics, by labilizing lipid-protein interactions, induce conformational changes in membrane proteins involved in the transmission of neural impulses. In the first communication of this series we report that general anesthetics induce changes in the fluorescence of the probes ANS and NPN in model membranes, lipid vesicles and mitochondria. The changes observed concern the quantumyield but not the position of the emission maximum. Such changes may be interpreted as due to fluidization of the membrane core (NPN), accompanied by variable effects in the membrane surface(ANS).

Anesthesia, General↗

Molecular mechanism of general anesthesia: III. Kinetic studies on erythrocyte ghost acetylcholinesterase.

General anesthetics inhibit erythrocyte membrane-bound acetylcholinesterase. Release of the membrane-bound enzyme by sonication into a soluble form induces a loss of sensitivity to anesthetics. Reconstitution of the solubilized enzyme with phospholipids restores its inhibition by anesthetics. The results suggest that anesthetic inhibition of acetylcholinesterase is mediated through the lipid bilayer.

Acetylcholinesterase↗

Lipid protein interactions in mitochondria. VIII. Effect of general anesthetics on the mobility of spin labels in lipid vesicles and mitochondrial membranes.

We have studied the effect of general anesthetics on the mobility of two stearic acid spin labels (5-doxyl stearic acid and 16-doxyl stearic acid) in bovine heart mitochondria and in phospholipid vesicles made from either mitochondrial lipids or commercial soybean phospholipids. The general anesthetics used include nonpolar compounds (alcohols, halothane, pentane, diethyl ether, chloroform) and the amphiphatic compound, ketamine. All anesthetics tested increase the mobility of the spin labels in phospholipid vesicles to a limited extent up to a concentration where the ESR spectra become those of free spin labels. On the other hand, anesthetics have a pronounced effect on mitochondrial membranes at concentrations as low as those known to produce general anesthesia; the effect is lower near the bilayer surface (5-doxyl stearic acid) and very strong in the bilayer core (16-doxyl stearic acid). The effects of anesthetics are mimicked by the detergent, Triton X-100. We suggest that the discrepancy between the action of anesthetics in mobilizing the spin labels in lipid vesicles and in membranes results from labilization of lipid protein interactions.

Anesthetics↗

Biophysical studies on agents affecting the state of membrane lipids: biochemical and pharmacological implications.

The phospholipid requirement of membrane-bound enzymes may depend on several reasons. In our laboratory we have investigated lipids (1) as a bidimensional medium required for the movement of Coenzyme Q, a lipid-soluble cofactor of the mitochondrial respiratory chain, and (2) as a hydrophobic environment necessary to impose the proper conformation to membrane-bound enzymic proteins. We have found that Coenzyme Q, once reduced by NADH dehydrogenase, must cross the inner mitochondrial membrane; only quinones having long isoprenoid side chains can easily cross phospholipid bilayers, and this is the reason why a short chain quinone such as CoQ-3 inhibits NADH oxidation. The incapability of short quinones to cross lipid bilayers is due to their disposition in the lipid bilayer, stacked within the phospholipids. The conformational role of lipids has been investigated indirectly observing the kinetics of membrane-bound enzymes, e.g. the mitochondrial ATPase, and directly by circular dichroism. Lipid removal or lipid perturbation with organic solvents induce a decrease of alpha-helical content in mitochondrial proteins, and give rise to a series of kinetic changes in ATPase, including uncompetitive inhibition, increased activation energy, and loss of cooperativity in oligomycin inhibition. The recognition of a conformational role of lipids has allowed us to postulate a working hypothesis for the mechanism of action of general anesthetics. Such drugs have been found by us, by means of spin labels and fluorescent probes, to disrupt lipid protein interactions in several membranes, including synaptic membranes. The loosening of such interactions is believed to induce conformational changes, which will alter ion transport systems necessary to the propagation of neural impulses. Conformational changes induced by anesthetics have been found by us both directly by circular dichroism and indirectly by enzyme kinetics. The conformational effect of anesthetics is not directly exerted on the proteins but is mediated through the lipids. In agreement with this hypothesis we have found that membrane-bound acetylcholinesterase is inhibited by anesthetics, whereas the solubilized enzyme is not inhibited. However, binding of the solubilized enzyme to phospholipids restores anesthetic inhibition.

Acetylcholinesterase↗