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M Rigoulet

Publications and source records attributed to M Rigoulet.

82 records · Page 5Linked to original sources

Effect of tribenzylphosphate on the active phosphate transport and ATP synthesis in yeast mitochondria.

Tribenzylphosphate (TBP), a specific inhibitor of the high affinity system for Pi transport in yeast mitochondria, inhibits the active Pi transport measured by the energy-linked swelling. The dependence of the rate of oligomycin sensitive ATP synthesis as a function of the external Pi concentration shows two kinetic systems. The high affinity system, corresponds to the range of the external Pi concentration which stimulates the respiratory rate. TBP inhibits both this system and the state 4 leads to state 3 transition.

Adenosine Triphosphate↗

[Isolation of plasma membranes from murine peritoneal macrophages and production of a heterologous immune serum].

Plasma membranes of murine peritoneal macrophages were obtained after light pounding of the cells by differential centrifugation. Subcellular fractions were monitored by specific enzymatic assays and by electron microscopy. Injection of plasma membranes into the rabbit produced an anti-serum containing specific antibodies of macrophage membrane antigen detected by indirect immunofluorescence method.

Animals↗

[Vasogenic cerebral oedema. Changes in membrane ATPases. Correction by a phospholipid precursor (author's transl)].

In vasogenic cerebral oedema, there is progressive quantitative and qualitative impairment of mitochondrial ATPase and of Na/K/ATPase. This impairment, which reflects the intracellular component of cerebral oedema, would appear to be related to changes in the phospholipid environment of the cell membrane enzymes. CDP choline, a metabolic phospholipid precursor, is to a certain extent capable of correcting this disturbed activity and at the same time reduce oedema.

Adenosine Triphosphatases↗

Regulation of cytochrome c oxidase by adenylic nucleotides. Is oxidative phosphorylation feedback regulated by its end-products?

Cytochrome c oxidase, which catalyzes an irreversible step of the respiratory chain, is one of the rate-controlling steps of oxidative phosphorylation on isolated mitochondria. The rate of electron transfer through the complex is primarily controlled by the associated thermodynamic forces, i.e., the span in redox potential between oxygen and cytochrome c and the protonmotive force. However, the electron flux also depends on the various kinetic effectors, including adenylic nucleotides. Although the number of binding sites for ATP and ADP on cytochrome oxidase is still a matter of debate, experiments performed on the solubilized and reconstituted enzyme provide strong functional evidence that the mammalian cytochrome c oxidase binds adenylic nucleotides on both sides of the inner membrane. These effects include modification in cytochrome c affinity, allosteric inhibition and changes in proton pumping efficiency. Immunological studies have pointed out the role of subunit IV and that of an ATP-binding protein, subunit VIa, in these kinetic regulations. In yeast, the role of the nuclear-encoded subunits in assembly and regulation of the cytochrome c oxidase has been further substantiated by using gene-disruption analysis. Using a subunit VIa-null mutant, the consequences of the ATP regulation on oxidative phosphorylation have been further investigated on isolated mitochondria. Taken together, the data demonstrate that there are multiple regulating sites for ATP on the yeast cytochrome oxidase with respect to the location (matrix versus cytosolic side), kinetic effect (activation versus inhibition) and consequence on the flow-force relationships. The question is therefore raised as to the physiological meaning of such feedback regulation of the respiratory chain by ATP in the control and regulation of cellular energy metabolism.

Adenine Nucleotides↗

Mitochondrial ROS metabolism: modulation by uncoupling proteins.

Most of the oxygen consumed by aerobic organisms is reduced to water by the enzyme cytochrome c oxidase in the terminal reaction of the mitochondrial respiratory chain. A significant proportion of the oxygen molecules are converted to superoxide anion radicals by complexes I and III via a nonenzymatic process. A cascade of enzymes, some of them inside the mitochondria themselves, scavenges superoxide anions in order to protect cells from oxidative damage induced by reactive oxygen species (ROS). Unfortunately, the quantification of the fluxes of mitochondrial ROS inside living cells is currently almost impossible, and this in turn limits our knowledge. Presently, the involvement of mitochondrial ROS can only be demonstrated by indirect strategies and among them knockout techniques are the most convincing. The yield of superoxide generation and subsequently ROS production depend mostly on oxygen concentration but can be efficiently modulated by mitochondrial uncoupling. This role could be assumed in part by one of the Uncoupling Proteins (UCPs). These proteins have coenzyme Q as an obligatory partner and we present here the hypothesis of UCPs as a crucial element of the respiratory chain. ROS have been mostly involved in degenerative processes including ageing. More recently, numerous studies point out the role of ROS as true intracellular second messengers. A putative role of mitochondrial ROS as the sensing element of energy metabolism is discussed here. We propose that UCPs could play a central role in modulation of ROS-dependent signalling pathways and metabolic sensing via the modulation of ROS generation.

Animals↗