Literature DB >> 22451442

Comparison of kinetic models for analysis of pyruvate-to-lactate exchange by hyperpolarized 13 C NMR.

Crystal Harrison1, Chendong Yang, Ashish Jindal, Ralph J DeBerardinis, M A Hooshyar, Matthew Merritt, A Dean Sherry, Craig R Malloy.   

Abstract

The activity of specific enzyme-catalyzed reactions may be detected in vivo by (13) C NMR of hyperpolarized (HP) substrates. The signals from HP substrates and products, acquired over time, have been fitted to a number of different mathematical models to determine fluxes, but these models have not been critically compared. In this study, two-pool and three-pool first-order models were constructed to measure flux through lactate dehydrogenase in isolated glioblastoma cells by NMR detection of lactate and pyruvate following the addition of HP [1-(13) C]pyruvate. Mass spectrometry (MS) was used to independently monitor (13) C enrichment in intra- and extracellular lactate. Six models were evaluated using time-dependent pyruvate C2 and lactate C1 HP NMR data acquired by the use of selective excitation pulses, plus (13) C enrichment data from intracellular and extracellular lactate measured by MS. A three-pool bidirectional model provided the most accurate description of pyruvate metabolism in these cells. With computed values for T(1) of pyruvate and lactate, as well as the effect of pulsing, the initial flux through lactate dehydrogenase was well determined by both the two-pool bidirectional and unidirectional models when only HP data were available. The three-pool model was necessary to fit the combined data from both MS and HP, but the simpler two-pool exchange model was sufficient to determine the (13) C lactate concentration when the lactate appearance was measured only by HP.
Copyright © 2012 John Wiley & Sons, Ltd.

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Year:  2012        PMID: 22451442      PMCID: PMC3469722          DOI: 10.1002/nbm.2801

Source DB:  PubMed          Journal:  NMR Biomed        ISSN: 0952-3480            Impact factor:   4.044


  31 in total

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10.  Hyperpolarized 13C allows a direct measure of flux through a single enzyme-catalyzed step by NMR.

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  53 in total

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4.  Transmembrane exchange of hyperpolarized 13C-urea in human erythrocytes: subminute timescale kinetic analysis.

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5.  Glutamine oxidation maintains the TCA cycle and cell survival during impaired mitochondrial pyruvate transport.

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6.  The effect of exogenous substrate concentrations on true and apparent metabolism of hyperpolarized pyruvate in the isolated perfused lung.

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9.  A regional bolus tracking and real-time B1 calibration method for hyperpolarized 13 C MRI.

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Review 10.  Hyperpolarized 13C MRI: State of the Art and Future Directions.

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