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 739 records · Page 41Linked to original sources

Deletions in the mitochondrial DNA and decrease in the oxidative phosphorylation activity of children with Fanconi syndrome secondary to antiblastic therapy.

The aim of this study is to verify whether there are deletions in mitochondrial DNA (mtDNA) and disorders in oxidative phosphorylation (Ox-phos) complexes in the pathogenesis of secondary Fanconi syndrome (FS). We studied 18 children with tumors who were previously treated with chemotherapy and were off therapy for at least 1 year. All the children had normal renal function at diagnosis. Only 4 children received ifosfamide (IFO) and platinum compounds. We evaluated renal function, Ox-phos activity measured on platelets, and mtDNA extracted from platelets for all patients. Only 2 patients, both treated with IFO and carboplatinum (CARBO) for Wilms' tumor and germ-cell tumor, respectively, developed FS 1 and 3 years after termination of therapy. They had decreased activities of Ox-phos that were statistically significant only for nicotinamide adenine dinucleotide (NAD)-reduced cytochrome-c reductase and cytochrome-c oxidase and specific and unidentified deletions in mtDNA that were not maternally inherited. Our data suggest that treatment with IFO and CARBO might be responsible for deletions in mtDNA, decreased activity of Ox-phos, and impaired rates of transport of D-glucose, phosphate, and amino acids.

Antineoplastic Agents↗

[Effect of Fe2+- and gamma-induced lipid peroxidation on respiration and oxidative phosphorylation in the mitochondria].

Lipid peroxidation activated by low concentrations of Fe2+ ions in a medium (1-5 microM) and gamma-quanta (10-50 Gy) stimulates the oxygen consumption and oxidative phosphorylation during the initial period of incubation (10-20 min). With relatively high concentrations of Fe2+ ions and higher radiation doses (50-100 Gy) inhibition of the activity of mitochondria is registered with respect to both indices.

Animals↗

Stimulation of cardiac glucose transport by inhibitors of oxidative phosphorylation.

Previously we showed that hypoxia in heart stimulates glucose transport via translocation of glucose transporters from intracellular membranes to the plasma membrane. We later showed that rotenone, an inhibitor of oxidative phosphorylation, also decreased intracellular transporters. Here, using another membrane fractionation technique, we show that rotenone increases plasma membrane transporters, and that another respiratory chain inhibitor, azide, acts similarly. Thus, they likely activate the same signaling pathway as hypoxia. Genistein, a tyrosine kinase inhibitor, inhibited insulin- and azide-stimulated 3-O-methylglucose transport similarly in cardiac myocytes. It also increased glucose transporters in the plasma membranes of perfused hearts even though it inhibited glucose uptake, suggesting effects on membrane trafficking. Another tyrosine kinase inhibitor, lavendustin A, and the cyclic nucleotide-dependent protein kinase inhibitors H-8 and H-7 had little effect on basal or azide-stimulated transport. Polymyxin B was a weak inhibitor of basal, insulin-stimulated, and azide-stimulated transport. A nitric oxide donor and a nitric oxide synthase inhibitor had no effect on basal and azide-stimulated transport. The results indicate that tyrosine kinases; protein kinases A, G, and C; and nitric oxide are not involved in the hypoxic activation of cardiac glucose transport.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

[Effect of tetracycline on rat liver mitochondrial oxidative phosphorylation in vivo and in vitro under a varying body allowance of protein].

An investigation of the tetracycline action in vivo and in vitro showed it to reduce the rate of oxidative phosphorylation in the rat liver mitochondria which, with an increased concentration or a longer introduction of the drug, gives place to inhibition of respiration. These changes occur following introduction of 100 mg/kg by the 10th day of the experiment and of 20 mg/kg--by the 20th day. The protein-low background is a factor contributing to a speedier effect of tetracycline. Heat-treated tetracycline produces greater changes than does the native drug.

Animals↗

Reversible Effects of Toxin from Helminthosporium maydis Race T on Oxidative Phosphorylation by Mitochondria from Maize.

Host-selective toxin from Helminthosporium maydis race T inhibited oxidative phosphorylation (AT(32)P formation) and stimulated ATPase activity by mitochondria from male-sterile (T) but not from normal (N) cytoplasm maize (Zea mays L.). Toxin increased the rate of NADH oxidation, but succinate oxidation was slightly, and malate-pyruvate oxidation was strongly inhibited as the associated ATP formation was abolished. There was a 1-minute lag before toxin gave maximal stimulation of NADH oxidation; the responses to 2,4-dinitrophenol and valinomycin were immediate. There was also a delay in the effect of toxin on ATP formation. T mitochondria were more sensitive than were N mitochondria to uncoupling by nigericin plus K(+); there was no evidence, however, that the action of toxin is related to that of nigericin or other ionophores. With NADH as the substrate, the degree of uncoupling increased with increases in toxin concentration up to a saturating level; kinetics of the response suggested reversibility. T mitochondria exposed to toxin for 5 minutes regained normal rates of respiration and of ATP formation when they were washed with toxin-free medium, showing that the uncoupling effect is reversible. Evidently HM-T toxin does not bind firmly to its site(s) of action, in contrast to reports for another hostselective toxin.

Journal Article↗

STUDIES ON ESSENTIAL FATTY ACID DEFICIENCY. EFFECT OF THE DEFICIENCY ON THE LIPIDS IN LIVER MITOCHONDRIA AND OXIDATIVE PHOSPHORYLATION.

1. Dietary deficiency of essential fatty acids results in a twofold increase in the neutral lipid content of liver mitochondria as compared with the corresponding value for stock-fed rats. 2. Deficiency produces changes in the pattern of the constituent fatty acids of the main phospholipid fractions of liver mitochondria which are similar to those previously reported for the lipids of whole liver. There is a fall in the content of C(18:2) acid and to a smaller extent of C(20:4) acid associated with a rise of C(16:1), C(18:1) and C(20:3) acids. 3. Deficiency results in small decreases in the phosphorylation quotients of liver mitochondria during oxidation of succinate and pyruvate, but the values lie within the range reported for normal mitochondria. Mitochondrial respiration with succinate is decreased as a result of deficiency but no change was observed with pyruvate as substrate.

Biochemical Phenomena↗

Effects of age and cardiac work in vitro on mitochondrial oxidative phosphorylation and (3H)-leucine incorporation.

Mitochondria isolated from in vitro perfused rat heart preparations were used to study the combined effects of age and physical stress. Age-related declines in oxidative phosphorylation catalyzed by mitochondria from nonperfused hearts were not observed. Low work load perfusion resulted in decreased respiration by mitochondria from 24-month-old hearts (p less than .01) but not 10-month old hearts, while high work load perfusion resulted in decreased respiration in both ages. However, the decrease by the 24-month-old hearts was significantly greater than those in the younger hearts (p less than .01). Compared to age-matched low work load hearts, 5- and 10-month-old high work load hearts increased mitochondrial protein synthesis by 86% and 93%, respectively, 15-month-old hearts increased by 60%, and 24-month-old hearts by 13%. The results of this study provide evidence that the ability of the heart to respond appropriately so as to adapt to stress decreases with age, becoming apparent in the laboratory rat between 10 and 15 months of age.

Aging↗

Localisation of the sites of action of cadmium on oxidative phosphorylation in potato tuber mitochondria using top-down elasticity analysis.

The aim of this study was to identify the significant sites of action of cadmium on oxidative phosphorylation in potato tuber mitocondria. We simplified the system to three convenient subsystems linked via the production or consumption of a common intermediate, namely protonmotive force. The three subsystems were substrate oxidation, which produces protonmotive force, and the proton leak reactions and the phosphorylation reactions, which consume protonmotive force. By measuring the effect of cadmium on the kinetic response of each subsystem to protonmotive force (top-down elasticity analysis), we found that cadmium stimulated proton leak reactions and strongly inhibited substrate oxidation, but had no measurable effect on the phosphorylation reactions. Cadmium therefore decreases the amount of ATP produced/oxygen consumed (the effective P/O ratio) not by inhibiting the phosphorylation reactions directly, but by inhibiting the production of protonmotive force and by diverting proton flux from phosphorylation reactions to the proton leak reactions.

Adenosine Triphosphate↗

Oxidative phosphorylation analysis: assessing the integrated functional activity of human skeletal muscle mitochondria--case studies.

Oxidative phosphorylation analysis, performed on freshly-isolated mitochondria, assesses the integrated function of the electron transport chain (ETC) coupled to ATP synthesis, membrane transport, dehydrogenase activities, and the structural integrity of the mitochondria. In this review, a case study approach is employed to highlight detection of defects in the adenine nucleotide translocator, the pyruvate dehydrogenase complex, fumarase, coenzyme Q function, fatty acid metabolism, and mitochondrial membrane integrity. Our approach uses the substrates glutamate, pyruvate, 2-ketoglutarate (coupled with malonate), malate, and fatty acid substrates (palmitoylcarnitine, octanoylcarnitine, palmitoyl-CoA (with carnitine), octanoyl-CoA (with carnitine), octanoate and acetylcarnitine) in addition to succinate, durohydroquinone and TMPD/ascorbate to uncover metabolic defects that would not be apparent from ETC assays performed on detergent-solubilized mitochondria.

Journal Article↗

Stimulation of glycolysis in Ehrlich ascites carcinoma cells with phenylhydrazonopropanedinitrile and others uncouplers of oxidative phosphorylation.

The metabolic consequences of the uncoupling effect of phenylhydrazonopropanedinitrile and others uncouplers of oxidative phosphorylation on Ehrlich ascites carcinoma (EAC) cells were investigated. Upon application of uncouplers in concentrations stimulating the respiration of EAC cells the accelerate glucose uptake and lactate production was observed. The maximal glycolysis stimulation was fourfold in relation to control at the given experimental conditions. Simultaneously the degree of conversion of glucose on lactate was increased. The acceleration of glycolysis was accompanied by stimulation of 14C-labeled adenine and valine incorporation indicating the increased rate of biosynthetic processes. The prolongation of uncoupler action time and application of their higher concentrations cause the inhibition of glycolysis and biosynthetic processes which is evoked with nonspecific effects of the compounds.

Animals↗

Renal amino acid transport in adults with oxidative phosphorylation diseases.

The clinical manifestations of mitochondrial DNA (mtDNA) mutations depend on a variety of factors including ratios of normal to abnormal mtDNA and tissue-specific differences in ATP production by oxidative phosphorylation (OXPHOS). In order to investigate the effects of OXPHOS defects on renal tubule function, we characterized sodium-coupled transport processes in six individuals with OXPHOS diseases. Pathogenic mtDNA mutations were identified in five of these individuals. Sodium coupled transport processes were evaluated by determining fractional excretions of amino acids, glucose, lactate, urate, and phosphate in patients and controls. Four of the six individuals had high fractional excretions of neutral amino acids, indicating abnormal renal tubule reabsorbtion of these amino acids. Abnormalities in fractional excretions of lactate, glucose, urate, and phosphate were less pronounced. These results demonstrate that sodium-coupled transport processes in the kidney are sensitive to OXPHOS impairment. When abnormalities in these processes are encountered, an OXPHOS disease should be included in the differential diagnosis.

Adenosine Triphosphate↗

[Effect of the protease inhibitor contrical on oxidative phosphorylation and proteolysis in kidney under thermal ischemia].

Morphological (at the tissue, cellular and subcellular levels) and biochemical (determination of the autolysis intensity, proteolytic activity for casein and BAPNA splitting, the level of oxidation phosphorylation) methods were used to show that a preliminary administration to the animal organism of contrical, an inhibitor of proteases partially prevents the kidneys, which endured a two-hour ischemia from development of irreversible changes, favours the preservation of the renal parenchyma structure, and stabilizes the energy status of cells.

Animals↗

[Effect of paracetamol on the microsomal oxidation, oxidative phosphorylation and liver mitochondria swelling in rats of various ages].

The effect of hepatotoxic dose of paracetamol (800 mg per kg, intraperitoneally, once a day during two days) on the system of microsomal oxidation, respiration, oxidative phosphorylation and high amplitude swelling of liver mitochondria was studied on 1-, 4- and 30-months old Wistar male rats. It has been shown, that paracetamol injection leads to the decrease of content of cytochrome P-450, to disorders of the function of monooxygenase system (the aminopyrine-N-demethylase and aniline hydroxylase activities were diminished), mitochondria macrostructure (the mitochondria high amplitude swelling time was decreased) and function (the respiratory control was decreased). These alterations have been observed to manifest to more extent in the liver of young rats as compared with old ones.

Acetaminophen↗

Uncoupling of mitochondrial oxidative phosphorylation abolishes the stimulatory action of insulin on the binding of glycolytic enzymes to muscle cytoskeleton.

1. We show here that treatment of diaphragm muscle with 2,4-dinitrophenol (DNP), an uncoupler of oxidative phosphorylation, abolished the stimulatory action of insulin on binding of the glycolytic enzymes, phosphofructokinase (PFK) and aldolase, to muscle cytoskeleton. This effect was demonstrated with low concentration of DNP, which caused only a small decrease in ATP and did not affect the basic levels of cytoskeleton-bound glycolytic enzymes. 2. Higher concentrations of DNP, which induced a drastic decline in ATP content, caused a decrease in cytoskeleton-bound glycolytic enzymes and damage to myofibrils. 3. These results suggest that mitochondrial ATP is required for both the preservation of the basal levels of cytoskeleton-bound glycolytic enzymes and cell structure, as well as for the expression of the stimulatory action of insulin on glycolytic enzymes' binding to muscle cytoskeleton.

2,4-Dinitrophenol↗