Noninvasive Measurements of Glycogen in Perfused Mouse Livers Using Chemical Exchange Saturation Transfer NMR and Comparison to 13C NMR Spectroscopy

被引:18
|
作者
Miller, Corin O. [1 ]
Cao, Jin [1 ]
Chekmenev, Eduard Y. [2 ,3 ]
Damon, Bruce M. [2 ,3 ,4 ]
Cherrington, Alan D. [4 ]
Gore, John C. [2 ,3 ,4 ]
机构
[1] Merck Res Labs, Kenilworth, NJ 07033 USA
[2] Vanderbilt Univ, Inst Imaging Sci, Nashville, TN 37232 USA
[3] Vanderbilt Univ, Dept Radiol & Radiol Sci, Sch Med, Nashville, TN 37232 USA
[4] Vanderbilt Univ, Dept Mol Physiol & Biophys, Sch Med, Nashville, TN 37232 USA
关键词
MUSCLE GLYCOGEN; IN-VIVO; METABOLISM; GLUCOSE;
D O I
10.1021/acs.analchem.5b01296
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Liver glycogen represents. an important physiological form Of energy storage. It plays a key role in the regulation Of blood glucose concentrations, and dysregulations in hepatic glycogen metabolism are linked to many diseases including diabetes and insulin resistance. In this work, we develop, optimize, and validate a noninvasive protocol to measure glycogen levels in isolated perfused mouse livers using chemical exchange saturation transfer (LEST) NMR spectroscopy. Model glycogen solutions were used to determine optimal Saturation pulse parameters which were then applied to intact perfused mouse livers of varying glycogen content. Glycogen measurements from serially acquired CEST Z-spectra of livers were compared with measurements from interleaved natural abundance C-13 NMR spectra. Experimental data revealed that CEST-based glycogen measurements were highly Correlated with C-13 NMR glycogen spectra. Monte Carlo simulations were then used to investigate the inherent (i.e., signal-to-nose-based) errors in the quantification of glycogen with each technique. This revealed that CEST was intrinsically more precise than C-13 NMR, although in-practice may be prone to other errors induced by variations in experimental Condition's. We also observed that the CEST signal from glycogen in liver was significantly less than, that observed from identical amounts in solution. Our results demonstrate that CEST provides an accurate, precise, and readily accessible method to noninvasively measure liver glycogen levels and their changes. Furthermore, this technique can be used to map glycogen distributions via conventional proton magnetic resonance imaging, a Capability universally available on clinical and preclinical magnetic resonance imaging,(MRI) scanners vs C-13 detection, which is Whited to a small fraction of clinical-scale MRI scanners.
引用
收藏
页码:5824 / 5830
页数:7
相关论文
共 50 条
  • [1] Probing Hepatic Glucose Metabolism via 13C NMR Spectroscopy in Perfused Livers-Applications to Drug Development
    Miller, Corin O.
    Cao, Jin
    METABOLITES, 2021, 11 (11)
  • [2] 13C Saturation-Transfer Difference (STD)-NMR Experiments Using INEPT Polarization Transfer
    Xu, Hui
    Lustig, Danielle
    Casabianca, Leah B.
    APPLIED MAGNETIC RESONANCE, 2020, 51 (03) : 277 - 286
  • [3] 13C Saturation-Transfer Difference (STD)-NMR Experiments Using INEPT Polarization Transfer
    Hui Xu
    Danielle Lustig
    Leah B. Casabianca
    Applied Magnetic Resonance, 2020, 51 : 277 - 286
  • [4] ABSOLUTE QUANTIFICATION AND NMR VISIBILITY OF GLYCOGEN IN THE ISOLATED, PERFUSED RAT-HEART USING C-13 NMR-SPECTROSCOPY
    GARLICK, PB
    PRITCHARD, RD
    NMR IN BIOMEDICINE, 1993, 6 (01) : 84 - 88
  • [5] Characterization of Mannosyl Dioxanium Ions in Solution Using Chemical Exchange Saturation Transfer NMR Spectroscopy
    de Kleijne, Frank F. J.
    Elferink, Hidde
    Moons, Sam J.
    White, Paul B.
    Boltje, Thomas J.
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2022, 61 (06)
  • [6] Constitution of konjac glucomannan:: chemical analysis and 13C NMR spectroscopy
    Katsuraya, K
    Okuyama, K
    Hatanaka, K
    Oshima, R
    Sato, T
    Matsuzaki, K
    CARBOHYDRATE POLYMERS, 2003, 53 (02) : 183 - 189
  • [7] DETERMINATION OF CHEMICAL STRUCTURE OF METHYL HYDROXYETHYLCELLULOSE BY 13C NMR SPECTROSCOPY
    Kostryukov, S. G.
    Araslankin, S. V.
    Petrov, P. S.
    Kalyazin, V. A.
    Al-Rubaye, A. A. I.
    IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII KHIMIYA I KHIMICHESKAYA TEKHNOLOGIYA, 2019, 62 (08): : 102 - 112
  • [8] Probing Slow Chemical Exchange at Carbonyl Sites in Proteins by Chemical Exchange Saturation Transfer NMR Spectroscopy
    Vallurupalli, Pramodh
    Kay, Lewis E.
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2013, 52 (15) : 4156 - 4159
  • [9] 13C NMR saturation transfer of CA II catalyzed CO2-HCO3-Exchange
    Ohliger, DE
    Forster, RE
    Wroblewski, K
    BIOPHYSICAL JOURNAL, 1999, 76 (01) : A180 - A180
  • [10] Exchange reaction of linear acetals with ethylene glycol by 13C NMR spectroscopy
    Balashov, AL
    Krasnov, VL
    Danov, SM
    Chernov, AY
    RUSSIAN JOURNAL OF GENERAL CHEMISTRY, 1999, 69 (09) : 1421 - 1426