Literature DB >> 7074018

Role of pyruvate transporter in the regulation of the pyruvate dehydrogenase multienzyme complex in perfused rat liver.

F M Zwiebel, U Schwabe, M S Olson, R Scholz.   

Abstract

Metabolic substrates such as octanoate, beta-hydroxybutyrate, and alpha-ketoisocaproate which produce acetoacetate stimulate the rate of pyruvate decarboxylation in perfused livers from fed rats at perfusate pyruvate concentrations in the physiological range (below 0.2 mM). A quantitative relationship between pyruvate oxidation (14CO2 production from [1-14C]pyruvate) and ketogenesis (production of acetoacetate or total ketone bodies) was observed with all ketogenic substrates when studied over a wide range of concentrations. The ratio of extra pyruvate decarboxylated to extra acetoacetate produced was greater than 1 with octanoate and alpha-ketoisocaproate, but it was less than 1 with beta-hydroxybutyrate. The stimulatory effect of beta-hydroxybutyrate on pyruvate decarboxylation was abolished completely in the presence of 0.1 mM alpha-cyanocinnamate, an inhibitor of the pyruvate transporting system in the mitochondrial membrane. The data suggest that the mechanism by which the flux through the pyruvate dehydrogenase reaction is stimulated in liver under ketogenic conditions involves an acceleration of the net rate of pyruvate transport into the mitochondria compartment due to an exchange with acetoacetate and/or acetoacetate plus beta-hydroxybutyrate.

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Year:  1982        PMID: 7074018     DOI: 10.1021/bi00531a023

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  10 in total

1.  A mitochondrial pyruvate carrier required for pyruvate uptake in yeast, Drosophila, and humans.

Authors:  Daniel K Bricker; Eric B Taylor; John C Schell; Thomas Orsak; Audrey Boutron; Yu-Chan Chen; James E Cox; Caleb M Cardon; Jonathan G Van Vranken; Noah Dephoure; Claire Redin; Sihem Boudina; Steven P Gygi; Michèle Brivet; Carl S Thummel; Jared Rutter
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Review 2.  Mitochondrial pyruvate transport: a historical perspective and future research directions.

Authors:  Kyle S McCommis; Brian N Finck
Journal:  Biochem J       Date:  2015-03-15       Impact factor: 3.857

3.  Metabolic and Signaling Roles of Ketone Bodies in Health and Disease.

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Journal:  Annu Rev Nutr       Date:  2021-10-11       Impact factor: 9.323

4.  Effect of ketone bodies on glucose production and utilization in the miniature pig.

Authors:  M J Müller; U Paschen; H J Seitz
Journal:  J Clin Invest       Date:  1984-07       Impact factor: 14.808

5.  Subcellular origin of the surface fluorescence of reduced nicotinamide nucleotides in the isolated perfused rat heart.

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Journal:  Basic Res Cardiol       Date:  1984 Jan-Feb       Impact factor: 17.165

6.  Kinase activator protein mediates longer-term effects of starvation on activity of pyruvate dehydrogenase kinase in rat liver mitochondria.

Authors:  G S Denyer; A L Kerbey; P J Randle
Journal:  Biochem J       Date:  1986-10-15       Impact factor: 3.857

7.  Regulatory effects of fatty acids on decarboxylation of leucine and 4-methyl-2-oxopentanoate in the perfused rat heart.

Authors:  D B Buxton; L L Barron; M K Taylor; M S Olson
Journal:  Biochem J       Date:  1984-08-01       Impact factor: 3.857

8.  Influence of insulin and glucose on pyruvate catabolism in perfused rat hindlimbs.

Authors:  P Schadewaldt; E Lammers; W Staib
Journal:  Biochem J       Date:  1985-04-01       Impact factor: 3.857

9.  Conversion of pyruvate into ketone bodies in rat hepatocyte suspensions.

Authors:  C M Battersby; K G Alberti; L Agius
Journal:  Biochem J       Date:  1985-11-01       Impact factor: 3.857

10.  A genetic toolkit for the analysis of metabolic changes in Drosophila provides new insights into metabolic responses to stress and malignant transformation.

Authors:  L Gándara; L Durrieu; C Behrensen; P Wappner
Journal:  Sci Rep       Date:  2019-12-27       Impact factor: 4.379

  10 in total

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