Literature DB >> 3985180

Determination of gluconeogenesis in vivo with 14C-labeled substrates.

J Katz.   

Abstract

A mitochondrial model of gluconeogenesis and the tricarboxylic acid cycle, where pyruvate is metabolized via pyruvate carboxylase and pyruvate dehydrogenase, and pyruvate kinase is examined. The effect of the rate of tricarboxylic acid flux and the rates of the three reactions of pyruvate metabolism on the labeling patterns from [14C]pyruvate and [24C]acetate are analyzed. Expressions describing the specific radioactivities and 14C distribution in glucose as a function of these rates are derived. Specific radioactivities and isotopic patterns depend markedly on the ratio of the rates of pyruvate carboxylation and decarboxylation to the rate of citrate synthesis, but the effect of phosphoenolpyruvate hydrolysis is minor. The effects of these rates on 1) specific radioactivity of phosphoenolpyruvate, 2) labeling pattern in glucose, and 3) contribution of pyruvate, acetyl-coenzyme A, and CO2 to glucose carbon are illustrated. To determine the contribution of lactate or alanine to gluconeogenesis, experiments with two compounds labeled in different carbons are required. Methods in current use to correct for the dilution of 14C in gluconeogenesis from [14C]pyruvate are shown to be erroneous. The experimental design and techniques to determine gluconeogenesis from 14C-labeled precursors are presented and illustrated with numerical examples.

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Year:  1985        PMID: 3985180     DOI: 10.1152/ajpregu.1985.248.4.R391

Source DB:  PubMed          Journal:  Am J Physiol        ISSN: 0002-9513


  33 in total

1.  Production of hyperpolarized 13CO2 from [1-13C]pyruvate in perfused liver does reflect total anaplerosis but is not a reliable biomarker of glucose production.

Authors:  Karlos X Moreno; Christopher L Moore; Shawn C Burgess; A Dean Sherry; Craig R Malloy; Matthew E Merritt
Journal:  Metabolomics       Date:  2015-01-09       Impact factor: 4.290

2.  Computational model of in vivo human energy metabolism during semistarvation and refeeding.

Authors:  Kevin D Hall
Journal:  Am J Physiol Endocrinol Metab       Date:  2006-01-31       Impact factor: 4.310

3.  Glucose turnover and gluconeogenesis in human pregnancy.

Authors:  S Kalhan; K Rossi; L Gruca; E Burkett; A O'Brien
Journal:  J Clin Invest       Date:  1997-10-01       Impact factor: 14.808

4.  The effects of free fatty acids on gluconeogenesis and glycogenolysis in normal subjects.

Authors:  X Chen; N Iqbal; G Boden
Journal:  J Clin Invest       Date:  1999-02       Impact factor: 14.808

5.  Gluconeogenesis in the amphibian retina. Lactate is preferred to glutamate as the gluconeogenic precursor.

Authors:  S S Goldman
Journal:  Biochem J       Date:  1988-09-01       Impact factor: 3.857

Review 6.  On problems of calculating energy expenditure and substrate utilization from respiratory exchange data.

Authors:  Y Schutz
Journal:  Z Ernahrungswiss       Date:  1997-12

7.  An n.m.r. study of the tricarboxylic acid cycle.

Authors:  J Katz
Journal:  Biochem J       Date:  1989-11-01       Impact factor: 3.857

8.  Mechanism of liver glycogen repletion in vivo by nuclear magnetic resonance spectroscopy.

Authors:  G I Shulman; D L Rothman; D Smith; C M Johnson; J B Blair; R G Shulman; R A DeFronzo
Journal:  J Clin Invest       Date:  1985-09       Impact factor: 14.808

9.  Quantitative analysis of glycogen repletion by nuclear magnetic resonance spectroscopy in the conscious rat.

Authors:  G I Shulman; L Rossetti; D L Rothman; J B Blair; D Smith
Journal:  J Clin Invest       Date:  1987-08       Impact factor: 14.808

10.  Regulation of net hepatic glycogenolysis and gluconeogenesis during exercise: impact of type 1 diabetes.

Authors:  Kitt Falk Petersen; Thomas B Price; Raynald Bergeron
Journal:  J Clin Endocrinol Metab       Date:  2004-09       Impact factor: 5.958

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