Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “OXIDATIVE PHOSPHORYLATION”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 793 records · Page 44Linked to original sources

Quantitative analysis of the 'phosphocreatine shuttle': I. A probability approach to the description of phosphocreatine production in the coupled creatine kinase-ATP/ADP translocase-oxidative phosphorylation reactions in heart mitochondria.

For the first time, a probability approach was used to describe heart mitochondrial respiration in the medium with ATP, Cr and PCr but without ADP. Respiring mitochondria were considered as a three-component system, including (1) oxidative phosphorylation reactions which provide stable ATP concentration in the mitochondrial matrix; (2) adenine nucleotide translocase, which provides exchange transfer of matrix ATP for outside creatine kinase-supplied ADP when both substrates are simultaneously bound to translocase and (3) creatine kinase, starting these reactions when activated by the substrates from medium. The specific feature of this system is a close proximity of creatine kinase and translocase molecules. This results in high probability of direct activation of translocase by creatine kinase-derived ADP without its leak into the medium. In turn, the activated translocase with the same high probability directly provides creatine kinase with matrix-derived ATP. The catalytic complexes of creatine kinase with ATP from matrix together with those formed from substrates from medium provide high activation of creatine kinase coupled to translocase activation. The considered probabilities were arranged into a mathematical model. The model satisfactorily simulates the experimental data by Jacobus, W.E. and Saks, V.A. ((1982) Arch. Biochem. Biophys. 219, 167-178), who investigated this system in all regimens of functioning. The results suggest the observed kinetic and thermodynamic irregularities in the behavior of structurally-bound creatine kinase as a direct consequence of its tight coupling to translocase.

Adenosine Triphosphate↗

SIZE AND SHAPE TRANSFORMATIONS CORRELATED WITH OXIDATIVE PHOSPHORYLATION IN MITOCHONDRIA. II. STRUCTURAL CHANGES IN MITOCHONDRIAL MEMBRANE FRAGMENTS.

It has been demonstrated that the nature of the physical change in mitochondrial membrane fragments associated with the action of the respiratory enzymes is likely one of shape or symmetry rather than size. The findings suggest that in the state of decreased scattering the macromolecules may be present in an extended physical state. Conditions favorable for phosphorylation may give rise to a folding or contraction of the molecular complex to a more symmetrical structure. Since earlier studies have shown that there is a compulsory relationship between the integrity of systems operative in oxidative phosphorylation and scattering changes, experiments of this type may lead to values for the minimal size of a phosphorylating unit, which at present is estimated to be 2.1 x 10(6) from light-scattering studies.

Metabolism↗

Oxidative phosphorylation dysfunction modulates expression of extracellular matrix--remodeling genes and invasion.

A number of recent studies suggest that mitochondrial function is a player in tumor development and progression. In this study, we have used gene expression arrays to examine transcriptional differences between oxidative phosphorylation (OXPHOS)-competent and OXPHOS-impaired human osteosarcoma cells. Genes associated with extracellular matrix remodeling, including members of the matrix metalloproteinases (MMPs) and tissue inhibitors of the MMP (TIMP) family, urokinase plasminogen activator and its inhibitor plasminogen-activator inhibitor-1 (PAI1), and CTGF and CYR61 (members of the Cysteine-rich 61, Connective Tissue Growth Factor and Nephroblastoma-overexpressed (CCN) gene family of growth regulators), were among the ones significantly altered in the OXPHOS-deficient cells. These changes were confirmed by RT-PCR and promoter reporter assays. Alterations at the protein level for some of these factors were also observed, though at a lower magnitude, with the exception of TIMP1, where a marked change in steady-state levels of the protein was observed after induction of OXPHOS dysfunction. Repopulation of mitochondrial DNA (mtDNA)-less cells with wild-type mtDNA reduced matrigel invasion, whereas repopulation with a mutated mtDNA did not. Taken together our data suggests that OXPHOS dysfunction modulates the invasive phenotype by transcriptional regulation of genes coding for members of the MMP/TIMP system, urokinase plasminogen activator/plasminogen-activator inhibitor I and CCN proteins.

Bone Neoplasms↗

The effects of oligomycin on energy metabolism and cation transport in slices of rat liver. Inhibition of oxidative phosphorylation as the primary action.

1. In slices of rat liver, oligomycin inhibited the net transport of Na+ and K+ by a maximum of 30% and endogenous respiration by 25%. These effects were not increased by a number of modifications in the incubation conditions. 2. Mitochondria isolated from the slices after incubation showed respiratory control ratios that were somewhat less than in mitochondria from fresh liver, but state 3 respiration retained normal sensitivity to oligomycin. 3. Low concentrations of oligomycin or cyanide reduced respiration and ATP levels of the slices but did not affect ion transport unless these levels fell below a definite critical value. In contrast, ouabain and atractyloside each caused substantial degrees of transport inhibition at ATP levels which were in excess of the critical value. 4. High concentrations of cyanide and oligomycin reduced ATP contents maximally by 90% and 65%, respectively. Studies of lactate production, and of the effects of arsenite on respiration and ATP levels, suggested that substrate-level phosphorylation in the citric-acid cycle was the major source of the oligomycinresistant ATP synthesis. 5. The results suggest that oligomycin acts in the liver slices primarily as an inhibitor of oxidative phosphorylation, and that this is the cause of the partial inhibition of ion transport. The oligomycin-resistant ion-transporting activity is consistent with the persisting level of ATP synthesis.

Animals↗

[Effect of sodium alpha-ketoglutarate injected after x-ray treatment on the respiration and oxidative phosphorylation of hepatic mitochondria].

It have been found that total X-ray treatment (everyday expose to 1 Roentgen up to achievement of total doses 10, 20 30 Roentgen) inhibits the rate of ADP-stimulated respiration of rat liver mitochondria, decreases its efficiency and makes phosphorylation less couple to respiration. All this effects are present from the first period after treatment till the end of treatment. Intraperitoneal alpha-ketoglutarate injections during treatment decreases the inhibition of respiration and oxidative phosphorylation, increases the efficiency of respiration during the period from 1-st injected till the end of experiment.

Adenosine Diphosphate↗

Different metabolic properties of mitochondrial oxidative phosphorylation in different cell types--important implications for mitochondrial cytopathies.

The metabolic and functional diversity of animal mitochondria caused by different mitochondrial compositions due to tissue-specific mitochondrial pathways and tissue-specific differences in expression of isoforms of subunits of enzymes participating in oxidative phosphorylation will be reviewed here. Applying the concept of metabolic control analysis, the relevance of this diversity for the explanation of tissue-specific effects observed in mitochondrial diseases with homoplasmic mitochondrial DNA mutations and nuclear-encoded respiratory chain defects is discussed.

Animals↗

Effect of Feloran (diclofenac sodium) on the oxidative phosphorylation of rat liver mitochondria.

The effect of Feloran (diclofenac sodium) on rat liver mitochondria is studied. It is shown that in concentrations of the order of 0.1 mM Feloran blocks the second or third point of the respiratory chain, inhibits the soluble mitochondrial ATPase and uncouples oxidative phosphorylation. In addition, there is also an increase in the ionic permeability of the inner mitochondrial membrane. These effects are assumed to be important for the anti-inflammatory action of Feloran.

Animals↗

Effect of hemorrhagic shock on oxidative phosphorylation and blood flow in rabbit gastrointestinal mucosa.

The pathophysiologic mechanism responsible for ulceration of gastric fundus and corpus mucosa following hemorrhagic shock is not well defined. We examined the effect of hemorrhagic shock (25 ml blood/kg) and resuscitation (reinfusion of shed blood) on oxidative phosphorylation in different tissues of the rabbit to determine if differences in mitochondrial response to hemorrhagic shock and resuscitation contribute to the propensity of gastric fundus and corpus to necrose before other tissues. Blood flow was measured by using radioisotope-labeled microspheres to determine if changes in regional blood flow could be correlated with this propensity to ulcerate. The respiratory control index (RCI), an index of the integrity of mitochondrial function, was significantly increased in gastric antrum, liver, and kidney from the animals subjected to hemorrhagic shock and successful resuscitation when compared to control animals. In liver and kidney, these differences were largely due to increases in state 3 respirations. Duodenal and gastric corpus and fundus mitochondria showed no differences in RCI between bled and control groups. Blood flow data did not implicate ischemia as the mechanism responsible for the differential rate of ulceration after hemorrhage. The inability of fundus, corpus, and small-bowel mucosal mitochondria to respond to the stress of hemorrhagic shock and resuscitation in a manner similar to liver, kidney, and gastric antral mitochondria may place these tissues at greater risk to ulcerate. Further work is necessary to define whether this difference in mitochondrial response patterns represents a real increase in the maximal respiratory capacity of liver, kidney, and antrum after shock and resuscitation.

Animals↗

Effect of parthenin on mitochondrial oxidative phosphorylation.

The sesquiterpene lactone, 'parthenin' the toxic principle of the allergenic weed Parthenium hysterophorus, inhibited 'state 3' respiration and stimulated 'state 4' respiration in rat liver and kidney mitochondria as well as ATPase activity in the presence of Mg2+ ions. These properties indicate that the toxic action of parthenin may be related to its interference with oxidative phosphorylation.

Adenosine Triphosphatases↗

Effects of ethidium bromide treatment of mouse cells on expression and assembly of nuclear-coded subunits of complexes involved in the oxidative phosphorylation.

Using mouse cell lines 5P and 5PEr (ethidium bromide-resistant derivative of 5P), we examined the influence of blocking expression of mitochondrial-gene products with ethidium bromide on the expression and assemblies of nuclear-coded subunits of the complexes involved in the oxidative phosphorylation. The results suggest that in the absence of mitochondrial-coded products, the expressions of subunit VIc of complex IV and beta-subunit of F1-ATPase are not affected, but that most nuclear-coded subunits other than alpha- and beta-subunits of F1-ATPase cannot be assembled nor inserted into the inner membrane.

Actins↗

Altered mitochondrial oxidative phosphorylation in hippocampal slices of kainate-treated rats.

Mitochondria provide the main neuronal energy supply and are important organelles for the sequestration of intracellular Ca2+. This indicates a possible important role for mitochondria in modulating neuronal excitability in normal function as well as in disease. Therefore, we have investigated mitochondrial oxidative phosphorylation in the kainate model of epilepsy. We measured the oxygen consumption of single 400-micron rat hippocampal slices applying high resolution respirometry and determined mitochondrial NAD(P)H autofluorescence signal changes in single slices by laser-excited fluorescence spectroscopy. We observed an about 2-fold higher (p<0.001) basal glucose oxidation rate in slices from kainate-treated animals. This increased endogenous energy consumption was found to be unrelated to spontaneous activity since it was not sensitive to the inhibitors of the sodium-potassium ATPase ouabain and of the mitochondrial adenine nucleotide translocator atractyloside. This finding suggested an increased mitochondrial energy turnover in kainate-induced epilepsy. Furthermore, the uncoupler-stimulated oxygen consumption of the slices was approximately 1.3-fold higher (p<0.01) in the kainate model. In accordance with the respirometric data, fluorescence spectroscopy showed decreased reduction levels of the mitochondrial NAD-system in glucose oxidizing slices from kainate-treated rats. The preincubation of epileptic hippocampal slices with either BAPTA AM, ruthenium red or TPP+ increased the atractyloside sensitivity of glucose oxidation to about 1.4-fold (p<0.01). These observations indicate that the increased mitochondrial energy turnover in hippocampal slices from kainate-treated rats is most possibly caused by futile Ca2+-cycling.

Animals↗

A cyanine dye tri-S-C7(5). Phosphate-dependent cationic uncoupler of oxidative phosphorylation in mitochondria.

The trinuclear cyanine dye, tri-S-C7(5), at about 10 microM stimulated State 4 respiration of rat liver mitochondria more than 6-fold and released oligomycin-inhibited respiration completely. Thus, the dye is concluded to be a very effective cationic uncoupler of oxidative phosphorylation in mitochondria. However, for exhibition of its uncoupling action, the presence of Pi (or arsenate) was necessary, and a phosphate-transport inhibitor, N-ethylmaleimide or mersalyl, inhibited its action. The stimulation of phosphate transport via the Pi carrier by the dye is suggested to be directly related to the uncoupling action.

Animals↗

The role of the mitochondrion in sperm function: is there a place for oxidative phosphorylation or is this a purely glycolytic process?

We review here the current knowledge related to the metabolic pathways used by spermatozoa to meet their high demands for ATP. This is discussed with special emphasis on one of their key roles, motility. We believe that the controversy among glycolytic and oxidative phosphorylation supporters is artificial and, as it happens in many other cell types, the source of ATP is multiple and depends on external inputs.

Animals↗

Participation of epsilonADP and epsilonATp in the reactions of oxidative phosphorylation in rat liver mitochondria.

The 1,N6-ethenoadenine nucleotide analogs epsilonADP and epsilonATP, contrary to recent findings (1), are shown to be unable to penetrate the inner mitochondrial membrane of intact rat liver mitochondria and can not be used as substrates by the respiratory chain enzymes in oxidative phosphorylation. On the other hand, these analogs are able to participate in transphosphorylation reactions, being good substrates for mitochondrial phosphotransferases located in the intermembrane space, such as nucleosidediphosphate kinase and adenylate kinase.

Adenosine Diphosphate↗

Seed dormancy: breaking by uncouplers and inhibitios of oxidative phosphorylation.

When 2,4-dinitrophenol and carbon dioxide were applied together to dormant seeds of Trifolium subterraneum L. (subterranean clover), 2,4-dinitrophenol did not disturb the breaking of dormancy which carbon dioxide usually induces in legume seeds. On the contrary, on its own, it promoted germination in a substantial proportion of seeds; a similar effect was produced by other uncouplers or inhibitors of oxidative phosphorylation.

Antimetabolites↗

The oxidative phosphorylation (OXPHOS) system: nuclear genes and human genetic diseases.

The ubiquitous nature of mitochondria, the dual genetic foundation of the respiratory chain in mitochondrial and nuclear genome, and the peculiar rules of mitochondrial genetics all contribute to the extraordinary heterogeneity of clinical disorders associated with defects of oxidative phosphorylation (mitochondrial encephalomyopathies). Here, we review recent findings about nuclear gene defects in isolated OXPHOS enzyme complex deficiency. This information should help in identifying patients with mitochondrial disease and defining a biochemical and molecular basis of the disorder found in each patient. This knowledge is indispensable for accurate genetic counseling and prenatal diagnosis, and is a prerequisite for the development of rational therapies, which are still, at present, woefully inadequate.

Cell Nucleus↗