Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Pyruvates”

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 901 records · Page 50Linked to original sources

[Metabolic conversion of pyruvate in the liver in experimental burns].

Content of Pyruvic acid was increased in liver tissue of rats after thermic burns of the IIa-IIIb grades affecting 25-30% of the body surface. Oxidation of pyruvic acid appears to be impaired after burns considering that consumption of oxygen was decreased in liver mitochondria in presence of pyruvate, the pyruvate dehydrogenase activity was decreased and specific radioactivity of CO2, liberated after incubation of liver slices with 2-1 C-pyruvate, was also decreased. Impairment of the pyruvate oxidation resulted in intensive consumption of the substance via other metabolic pathways, namely via lactate dehydrogenase reaction and glyconeogenesis.

Alanine Transaminase↗

Pathway of oxidation of pyruvic oxime by a heterotrophic nitrifier of the genus Alcaligenes: evidence against nitroethane as an intermediate.

The role of nitroethane as an intermediate in the oxidation of pyruvic oxime to nitrate by an Alcaligenes sp. was examined. Unlike pyruvic oxime, which serves as a sole source of C and N for the bacterium, nitroethane was incapable of supporting the growth of the microbe. Nitroethane was metabolized and diauxic growth did occur, however, if the nitroethane medium was amended with yeast extract. Alcaligenes sp. resting cells and cell-free extracts were prepared from nitroethane-yeast extract grown cultures and the maximum rate of nitrite synthesis when nitroethane was the substrate was 6.8 nmol min-1 mg cell protein-1, a 10-fold lower rate than that previously noted for pyruvic oxime oxidation. These cell-free extracts were unable to metabolize pyruvic oxime. Resting cells and cell-free extracts prepared from Alcaligenes sp. cells grown in a pyruvic oxime medium were, conversely, incapable of metabolizing nitroethane. Collectively, these results indicate that nitroethane is not an intermediate in the pathway of pyruvic oxime oxidation and that two separate enzyme systems exist in the Alcaligenes sp. for the metabolism of pyruvic oxime and nitroethane.

Alcaligenes↗

Metabolic flux analysis for efficient pyruvate fermentation using vitamin-auxotrophic yeast of Torulopsis glabrata.

The metabolism of a vitamin-auxotrophic pyruvate-producing microorganism, Torulopsis glabrata IFO 0005, was investigated by metabolic flux analysis. Particular attention was focused on the effect of culture conditions, such as dissolved oxygen (DO) concentration and thiamine concentration, on specific pathway activities. The results of metabolic flux analysis indicate that the thiamine concentration significantly affected pyruvate dehydrogenase and pyruvate decarboxylase activities, and plays an important role in cell growth and pyruvate production. Metabolic flux analysis was also utilized to clarify the metabolism of this strain during pyruvate fermentation under different oxygen supply conditions, and the reason for the enhanced pyruvate production under conditions of 30-40% DO concentration was clarified from the viewpoint of intracellular flux distributions. Based on the analysis of the effect of thiamine concentration on the metabolic fluxes, we conducted a fed-batch experiment where the initial thiamine concentration was reduced to 30 microg/l and thiamine was added at 10 microg/l during fermentation when the cell growth rate decreased to 0.2 h(-1). With separate addition of thiamine, the overall pyruvate yield could be improved by 15% due to the decrease of ethanol production.

Journal Article↗

Activation of Cytosolic Pyruvate Kinase by Polyethylene Glycol.

Homogeneous cytosolic pyruvate kinase from endosperm of germinating castor oil (Ricinus communis L. cv Hale) seeds was potently activated by polyethylene glycol. The addition of 5% (w/v) polyethylene glycol to the pyruvate kinase reaction mixture caused a 2.6-fold increase in maximal velocity and 12.5- and 2-fold reductions in Km values for phosphoenolpyruvate and ADP, respectively. Glycerol, ethylene glycol, and bovine serum albumin also enhanced pyruvate kinase activity, albeit to a lesser extent than polyethylene glycol. The addition of 5% (w/v) polyethylene glycol to the elution buffer during high-performance gel filtration chromatography of purified cytosolic pyruvate kinase helped to stabilize the active heterotetrameric native structure of the enzyme. A higher degree of inhibition by MgATP, but lower sensitivity to the inhibitors 3-phosphoglycerate and fructose- 1,6-bisphosphate, was also observed in the presence of 5% (w/v) polyethylene glycol. It is concluded that (a) plant cytosolic pyruvate kinase activity and regulation, like that of other regulatory pyruvate kinases, is modified by extreme dilution in the assay medium, probably as a result of deaggregation of the native tetrameric enzyme, and (b) ATP is probably the major metabolic effector of germinating castor endosperm cytosolic pyruvate kinase in vivo.

Journal Article↗

Substrate Kinetics of the Plant Mitochondrial Alternative Oxidase and the Effects of Pyruvate.

The kinetics of alternative oxidase (AOX) of Arum italicum spadices and soybean (Glycine max L.) cotyledons were studied both with intact mitochondria and with a solubilized, partially purified enzyme. Ubiquinone analogs were screened for their suitability as substrates and ubiquinol-1 was found to be most suitable. The kinetics of ubiquinol-1 oxidation via AOX in both systems followed Michaelis-Menten kinetics, suggesting that the reaction is limited by a single-step substrate reaction. The kinetics are quite different from those previously described, in which the redox state of ubiquinone-10 was monitored and an increase in substrate was accompanied by a decrease in product. The difference between the systems is discussed. Pyruvate is a potent activator of the enzyme and its presence is essential for maximum activity. The addition of pyruvate to the solubilized enzyme increased the maximum initial velocity from 6.2 [plus or minus] 1.3 to 16.9 [plus or minus] 2.8 [mu]mol O2 mg-1 protein min-1 but had little effect on the Michaelis constant for ubiquinol-1, an analog of ubiquinol, which changed from 116 [plus or minus] 73 to 157 [plus or minus] 68 [mu]M. It is concluded that pyruvate (and presumably other keto acids) increases the activity of AOX but does not increase its affinity for its substrate. In agreement with this is the finding that removal of pyruvate (using lactate dehydrogenase and NADH) leads to an 80 to 90% decrease in the reaction rate, suggesting that pyruvate is important in the mechanism of reaction of AOX. The removal of pyruvate from the enzyme required turnover, suggesting that pyruvate is bound to the enzyme and is released during turnover.

Journal Article↗

Contribution of malic enzyme, pyruvate kinase, phosphoenolpyruvate carboxylase, and the krebs cycle to respiration and biosynthesis and to intracellular pH regulation during hypoxia in maize root tips observed by nuclear magnetic resonance imaging and gas chromatography-mass spectrometry

In vivo pyruvate synthesis by malic enzyme (ME) and pyruvate kinase and in vivo malate synthesis by phosphoenolpyruvate carboxylase and the Krebs cycle were measured by 13C incorporation from [1-13C]glucose into glucose-6-phosphate, alanine, glutamate, aspartate, and malate. These metabolites were isolated from maize (Zea mays L.) root tips under aerobic and hypoxic conditions. 13C-Nuclear magnetic resonance spectroscopy and gas chromatography-mass spectrometry were used to discern the positional isotopic distribution within each metabolite. This information was applied to a simple precursor-product model that enabled calculation of specific metabolic fluxes. In respiring root tips, ME was found to contribute only approximately 3% of the pyruvate synthesized, whereas pyruvate kinase contributed the balance. The activity of ME increased greater than 6-fold early in hypoxia, and then declined coincident with depletion of cytosolic malate and aspartate. We found that in respiring root tips, anaplerotic phosphoenolpyruvate carboxylase activity was high relative to ME, and therefore did not limit synthesis of pyruvate by ME. The significance of in vivo pyruvate synthesis by ME is discussed with respect to malate and pyruvate utilization by isolated mitochondria and intracellular pH regulation under hypoxia.

Journal Article↗

In Organello and in Vivo Evidence of the Importance of the Regulatory Sulfhydryl/Disulfide System and Pyruvate for Alternative Oxidase Activity in Tobacco.

After isolation of tobacco (Nicotiana tabacum) leaf mitochondria, alternative oxidase (AOX) is predominantly present as the disulfide-linked, less-active "oxidized" form. In an in organello assay, significant AOX activity was dependent upon both the reduction of the regulatory disulfide bond (such as occurs by dithiothreitol) and upon the presence of the activator pyruvate. However, AOX activity in these assays was substantially affected when mitochondria were isolated in the presence of pyruvate. First, pyruvate protects against the oxidation of the regulatory sulfhydryl during isolation, such that subsequent in organello AOX activity is not dependent upon dithiothreitol. Second, pyruvate stabilizes AOX activity, such that mitochondria kept in the presence of pyruvate have higher maximum rates of AOX activity than mitochondria kept for some time in the absence of pyruvate. The ability of pyruvate to protect against AOX oxidation was exploited to assess the in vivo status of the regulatory sulfhydryl/disulfide system. In both tobacco suspension cells and tobacco leaves with high levels of AOX protein, the protein is predominantly present as the "reduced" active form in vivo under a range of respiratory conditions. Experiments also indicate that, while the presence of reduced protein may be a necessary prerequisite for significant AOX activity, it is not sufficient for activity and other factors must also be critical.

Journal Article↗

Pyruvate kinase, a possible regulatory enzyme in higher plants.

A number of plant species were examined for the presence of pyruvate kinase (pyruvate-ATP phosphotransferase, EC 2.7.1.40), and of a phosphatase activity which hydrolyzes phosphoenolpyruvate. Of those examined, only cotton (Gossypium sp. L.) seeds were found to be sufficiently free of the phosphatase to permit a kinetic study of pyruvate kinase.During germination of cotton seeds, pyruvate kinase activity rises for the first 3 days, after which it falls back to its original level. This developmental pattern is characteristic of enzymes involved in the conversion of fat into carbohydrate in fatstoring seeds. The phosphatase also rose rapidly during germination, which precluded the use of extracts from seedlings in the study of pyruvate kinase. No evidence was found for the presence of more than one pyruvate kinase in cotton seedlings.In crude extracts from ungerminated seeds, the enzyme shows slight deviations from normal kinetics with respect to phosphoenolpyruvate, magnesium, and to a lesser extent, ADP. After partial purification of the enzyme by ion exchange chromatography, the enzyme shows normal kinetics. The enzyme is activated by AMP, and inhibited by both ATP and citrate, in both crude and partially purified preparations. It is suggested that cotton seed pyruvate kinase is a regulatory enzyme.

Journal Article↗

Regulation of the phosphorylation of mitochondrial pyruvate dehydrogenase complex in situ: effects of respiratory substrates and calcium.

The activity of the pyruvate dehydrogenase complex (PDC), as controlled by reversible phosphorylation, was studied in situ with mitochondria oxidizing dfifferent substrates. PDCs from both plant and animal tissues were inactivated when pyruvate became limiting. The PDC did not inactivate in the presence of saturating levels of pyruvate. Calcium stimulated reactivation of PDC in chicken heart but not pea (Pisum sativum L.) leaf mitochondria. With pea leaf mitochondria oxidizing malate, inactivation of PDC was pH dependent corresponding to the production of pyruvate via malic enzyme. When pea leaf mitochondria oxidized succinate or glycine, PDC was inactivated. This inactivation was reversed by the addition of pyruvate. Reactivation by pyruvate was enhanced by the addition of thiamine pyrophosphate, as previously observed with nonrespiring mitochondria. These results indicate a major role for pyruvate in regulating the covalent modification of the PDC.

Journal Article↗

Acetyl-coenzyme a can regulate activity of the mitochondrial pyruvate dehydrogenase complex in situ.

In vitro, the pyruvate dehydrogenase complex is sensitive to product inhibition by NADH and acetyl-coenzyme A (CoA). Based upon K(m) and K(i) relationships, it was suggested that NADH can play a primary role in control of pyruvate dehydrogenase complex activity in vivo (JA Miernyk, DD Randall [1987] Plant Physiol 83:306-310). We have now extended the in vitro studies of product inhibition by assaying pyruvate dehydrogenase complex activity in situ, using purified intact mitochondria from green pea (Pisum sativum) seedlings. In situ activity of the pyruvate dehydrogenase complex is inhibited when mitochondria are incubated with malonate. In some instances, isolated mitochondria show an apparent lack of coupling during pyruvate oxidation. The inhibition by malonate, and the apparent lack of coupling, can both be explained by an accumulation of acetyl-CoA. Inhibition could be alleviated by addition of oxalacetate, high levels of malate, or l-carnitine. The CoA pool in nonrespiring mitochondria was approximately 150 micromolar, but doubled during pyruvate oxidation, when 60 to 95% of the total was in the form of acetyl-CoA. Our results indicate that in situ activity of the mitochondrial pyruvate dehydrogenase complex can be controlled in part by acetyl-CoA product inhibition.

Journal Article↗

Pyruvate:quinone oxidoreductase from Corynebacterium glutamicum: purification and biochemical characterization.

Pyruvate:quinone oxidoreductase catalyzes the oxidative decarboxylation of pyruvate to acetate and CO2 with a quinone as the physiological electron acceptor. So far, this enzyme activity has been found only in Escherichia coli. Using 2,6-dichloroindophenol as an artificial electron acceptor, we detected pyruvate:quinone oxidoreductase activity in cell extracts of the amino acid producer Corynebacterium glutamicum. The activity was highest (0.055 +/- 0.005 U/mg of protein) in cells grown on complex medium and about threefold lower when the cells were grown on medium containing glucose, pyruvate, or acetate as the carbon source. From wild-type C. glutamicum, the pyruvate:quinone oxidoreductase was purified about 180-fold to homogeneity in four steps and subjected to biochemical analysis. The enzyme is a flavoprotein, has a molecular mass of about 232 kDa, and consists of four identical subunits of about 62 kDa. It was activated by Triton X-100, phosphatidylglycerol, and dipalmitoyl-phosphatidylglycerol, and the substrates were pyruvate (kcat=37.8 +/- 3 s(-1); Km=30 +/- 3 mM) and 2-oxobutyrate (kcat=33.2 +/- 3 s(-1); Km=90 +/- 8 mM). Thiamine pyrophosphate (Km=1 microM) and certain divalent metal ions such as Mg2+ (Km=29 microM), Mn2+ (Km=2 microM), and Co2+ (Km=11 microM) served as cofactors. In addition to several dyes (2,6-dichloroindophenol, p-iodonitrotetrazolium violet, and nitroblue tetrazolium), menadione (Km=106 microM) was efficiently reduced by the purified pyruvate:quinone oxidoreductase, indicating that a naphthoquinone may be the physiological electron acceptor of this enzyme in C. glutamicum.

Aldehyde Oxidoreductases↗

Deuteration enhances UV-induced hyperpolarization of [1-13C]pyruvate to trityl-level performance in vitro and in vivo.

Dissolution dynamic nuclear polarization (dDNP) using UV-irradiated, non-persistent radicals has recently emerged as a filtration-free alternative to trityl-based methods; however, its performance for in vivo metabolic imaging remains insufficiently evaluated. Here, we systematically assessed UV-induced hyperpolarized (HP) [1-13C]pyruvate and its deuterated analog in the mouse brain, a technically demanding target for HP 13C MRI, and directly compared the results with conventional OX063-based dDNP. UV-induced HP [1-13C]pyruvate yielded lactate-to-pyruvate and bicarbonate-to-pyruvate ratios equivalent to those obtained with OX063-polarized preparations, and demonstrated good test-retest reproducibility. Deuteration substantially improved the polarization levels of UV-irradiated samples to values comparable to trityl-based dDNP, while preserving comparable in vivo metabolic readouts. Building on this methodological validation, awake 13C MRSI using HP [1-13C, d4]pyruvate, as applied in the present study, was used as a proof-of-concept in an Alzheimer's disease mouse model, where increased pyruvate-to-lactate conversion was detected in hippocampus-including regions of 3-month-old APPNL-G-F knock-in mice. Together, these results support UV-induced, deuterated HP pyruvate as a practical alternative to trityl-based dDNP and demonstrate its feasibility for preclinical HP 13C MRI studies of brain metabolism.

Alzheimer’s disease model↗

Breeding of high-pyruvate-producing Torulopsis glabrata and amino acid auxotrophic mutants.

An efficient method for the isolation of pyruvate-producing mutants of Torulopsis glabrata IFO 0005 was established. On mutagenesis of the parent strain, mutants requiring polypeptone for complete growth were isolated. Seven mutants among one hundred auxotrophs produced higher concentrations of pyruvate than the parent strain. Among them, arginine (L-Arg) auxotrophic mutants and an isoleucine (L-Ile) and valine (L-Val) double auxotrophic mutant exhibited higher fermentative production of pyruvate from glucose than the parent strain. T. glabrata X-15 and X-17 required L-Arg for complete growth. T. glabrata X-68 absolutely required L-Ile and L-Val for complete growth. These three strains (X-15, X-17 and X-68) have more than 10% higher yields of pyruvate than the parent strain. Among them, the best strain regarding pyruvate productivity, T. glabrata X-15, accumulated 59.5 g/l free pyruvic acid (yield, 60.1%; conversion to pyruvic acid of added glucose in 43 h) on a 3-l jar-fermentor scale. This yield with strain X-15 represented a 12% increase compared to that obtained with the parent strain.

Journal Article↗

Tests of the ability of two-cell mouse embryos to utilize selected precursors of phosphoenolpyruvic acid and pyruvic acid.

Phosphoenolpyruvic acid and pyruvic acid are among the few compounds that two-cell mouse embryos have been found capable of using as energy sources; most of the compounds in the glycolytic pathway and Krebs cycle that have been tested have been found unusable. Because 3-phosphoglyceric acid is the compound converted most directly to phosphoenolpyruvic acid in glycolysis, one objective of this study was to examine whether it could support development of two-cell embryos as phosphoenolpyruvic acid can. An additional objective was to examine whether alanine or serine, two amino acids that in later stages of development are converted to pyruvic acid for entry into the Krebs cycle, could support development of two-cell embryos as pyruvate does. Two-cell embryos were obtained from the oviducts of mice (C57BL x CBA) and were cultured in medium that contained 3-phosphoglyceric acid, alanine, or serine in lieu of the pyruvate, lactate, and glucose usually contained in the medium. The embryos failed to undergo cleavage but this was not attributable to only a single energy source having been provided; embryos developed in a medium that provided only pyruvate. The results suggest that mouse embryos at the two-cell stage of development are either unable to transport 3-phosphoglyceric acid, alanine, and/or serine or are unable to convert the compounds to chemically similar ones, phosphoenolpyruvic acid or pyruvic acid, which can be metabolized by two-cell mouse embryos.(ABSTRACT TRUNCATED AT 250 WORDS)

Alanine↗

Effect of oxythiamin on growth rate, survival ability and pyruvate decarboxylase activity in Saccharomyces cerevisiae.

Oxythiamin is one of the antivitamin derivatives of thiamin which, after phosphorylation, can be bound to the catalytic centre of thiamin-dependent enzymes and inhibit these enzymes. In this work the influence of oxythiamin on the growth rate, survival and the activity of pyruvate decarboxylase of Saccharomyces cerevisiae (s288c) was investigated. Oxythiamin decreased both the growth rate and survival ability of yeast cells. Moreover, in three-day-old cultures on a medium with oxythiamin, an increase of pyruvate decarboxylase activity was observed. This unusual effect may be in response to the earlier inhibition of pyruvate decarboxylase. A high concentration of pyruvate in the cell extracts taken from the medium with oxythiamin was found. This accumulation of pyruvate could provide for enhanced biosynthesis of the pyruvate decarboxylase apoform and an increase of enzyme activity.

Antimetabolites↗

In vitro kinetic studies of the reaction of hydralazine and its acetone hydrazone with pyruvic acid.

To understand the reaction between hydralazine (HP) or its acetone hydrazone (HAH), a metabolite of HP and pyruvic acid, a new selective HPLC method for simultaneous determination of HP, HAH, and hydralazine pyruvic acid hydrazone (HPH) was developed. In vitro degradation of HAH and formation of HP and HPH were investigated at pH 7.4 and 37 degrees C in the presence or absence of pyruvic acid. Hydralazine degraded slowly according to an apparent first-order rate (7.46 x 10(-2)h-1). The degenerative reaction of HAH, accompanied by simultaneous hydrolysis to the parent drug HP, was also subject to apparent first-order loss (3.00 x 10(-1)h-1). In addition, HAH was partly converted to HP and HPH in the presence of pyruvic acid. For the formation pathway of HPH, a model that included the direct reaction of HAH with pyruvic acid and the secondary formation mediated by back-conversion to HP gave a better fit to the experimental data than the model consisting of the latter reaction only. About 10% of the HPH formed was generated by the direct reaction of HAH with pyruvic acid, based on the rate constants estimated. These results suggest that the formation of HPH is not all accomplished through back-conversion to HP.

Chemical Phenomena↗

Uptake and metabolism of pyruvate and glucose by individual sheep preattachment embryos developed in vivo.

The uptake of pyruvate and glucose by individual sheep oocytes and preattachment sheep embryos at each state of development up to the hatching blastocyst was determined using a microfluorescence technique. After an initial increase at fertilization, pyruvate uptake was relatively constant (approximately 15 pmol/embryo/h) from the zygote through to the morula. Upon blastocyst formation and hatching, there were significant increases in uptake (39 pmol/embryo/h, P < 0.001; and 53 pmol/embryo/h, P < 0.001, respectively). In contrast to that of pyruvate, glucose uptake was very low (approximately 1 pmol/embryo/h) up to the time of genome activation (eight- to 16 cell stage), after which there were significant increases in uptake at each successive stage of development. By the hatching blastocyst stage, glucose uptake had reached 54 pmol/embryo/h. The ability of day-7 hatching blastocysts to oxidize pyruvate and glucose was determined indirectly by measuring the production of lactate when either substrate was present as the sole energy source. Unlike the mouse blastocyst, which has a considerable oxidative capacity for both pyruvate and glucose, the day-7 sheep blastocyst showed limited ability to oxidise either substrate. Rather, in the sheep blastocyst, 65% of pyruvate and 98% of glucose taken up could be accounted for as lactate. Such low levels of substrate oxidation appear to be inconsistent with the energy requirements of the proliferating preattachment ruminant blastocyst. The utilization of alternative substrates at the blastocyst, such as amino acids, is proposed.

Animals↗

Partial attenuation of dentate granule cell evoked activity by the alternative substrates, lactate and pyruvate: evidence for a postsynaptic action.

Granule cell field potentials were evoked by stimulation of the perforant path of superfused hippocampal slices. Replacing the glucose in the superfusion medium with pyruvate (10 mM) or lactate (10 mM) attenuated the field potentials, significant decreases occurring in both the population spike and the population EPSP. Usually, a new steady state level of evoked activity was established which could be maintained for at least 20 min. Input-output analyses (EPSP vs stimulus strength, population spike vs EPSP) were performed using variable stimulus strengths on slices superfused with control or test media (under steady state conditions). At higher stimulus strengths the rate of rise of population EPSP was significantly lower for a given stimulus strength when pyruvate or lactate replaced glucose. However, the threshold stimulus intensity required to evoke a population EPSP was the same under all conditions. EPSP/population spike relationships were also analyzed under control and test conditions. Pyruvate, but not lactate, increased the threshold EPSP required to generate a population spike. Neither substrate significantly affected the incremental change in EPSP associated with a given increase in the population spike. It is argued that lactate and pyruvate attenuate granule cell evoked activity solely by postsynaptic actions. Lactate and pyruvate both appear to affect the summation of EPSPs; pyruvate may also affect the process of granule cell discharge.

Action Potentials↗