• Title of article

    Early Imaging Biomarker of Myocardial Glucose Adaptations in High-Fat-Diet-Induced Insulin Resistance Model by Using 18F-FDG PET and [U-13C]glucose Nuclear Magnetic Resonance Tracer

  • Author/Authors

    Chung, Yi-Hsiu Linkou Chang Gung Memorial Hospital - Taoyuan, Taiwan , Lu, Kuan-Ying Department of Medical Imaging and Intervention - Imaging Core Lab - Institute for Radiological Research - Linkou Chang Gung Memorial Hospital and Chang Gung University - Taoyuan, Taiwan , Chiu, Shao-Chieh Linkou Chang Gung Memorial Hospital - Taoyuan, Taiwan , Lo, Chi-Jen Chang Gung University - Taoyuan, Taiwan , Hung, Li-Man Department and Graduate Institute of Biomedical Sciences - College of Medicine - Chang Gung University - Taoyuan, Taiwan , Huang, Jiung-Pang Department and Graduate Institute of Biomedical Sciences - College of Medicine - Chang Gung University - Taoyuan, Taiwan , Cheng, Mei-Ling Department and Graduate Institute of Biomedical Sciences - College of Medicine - Chang Gung University - Taoyuan, Taiwan , Wang, Chao-Hung Department of Internal Medicine - Chang Gung Memorial Hospital - Keelung, Taiwan , Tsai, Cheng-Kun Linkou Chang Gung Memorial Hospital - Taoyuan, Taiwan , Lin, Yu-Chun Department of Medical Imaging and Intervention - Imaging Core Lab - Institute for Radiological Research - Linkou Chang Gung Memorial Hospital and Chang Gung University - Taoyuan, Taiwan , Chang, Shang-Hung Department and Graduate Institute of Biomedical Sciences - College of Medicine - Chang Gung University - Taoyuan, Taiwan , Lin, Gigin Department of Medical Imaging and Intervention - Imaging Core Lab - Institute for Radiological Research - Linkou Chang Gung Memorial Hospital and Chang Gung University - Taoyuan, Taiwan

  • Pages
    10
  • From page
    1
  • To page
    10
  • Abstract
    High-fat diet (HFD) induces systemic insulin resistance leading to myocardial dysfunction. We aim to characterize the early adaptations of myocardial glucose utility to HFD-induced insulin resistance. Methods. Male Sprague–Dawley rats were assigned into two groups, fed a regular chow diet or HFD ad libitum for 10 weeks. We used in vivo imaging of cardiac magnetic resonance (CMR), 18F-FDG PET, and ex vivo nuclear magnetic resonance (NMR) metabolomic analysis for the carbon-13-labeled glucose ([U-13C]Glc) perfused myocardium. Results. As compared with controls, HFD rats had a higher ejection fraction and a smaller left ventricular end-systolic volume (P < 0.05), with SUVmax of myocardium on 18F-FDG PET significantly increased in 4 weeks (P < 0.005). The [U-13C]Glc probed the increased glucose uptake being metabolized into pyruvate and acetyl-CoA, undergoing oxidative phosphorylation via the tricarboxylic acid (TCA) cycle, and then synthesized into glutamic acid and glutamine, associated with overexpressed LC3B (P < 0.05). Conclusions. HFD-induced IR associated with increased glucose utility undergoing oxidative phosphorylation via the TCA cycle in the myocardium is supported by overexpression of glucose transporter, acetyl-CoA synthase. Noninvasive imaging biomarker has potentials in detecting the metabolic perturbations prior to the decline of the left ventricular function.
  • Keywords
    Glucose , 18F-FDG , PET , Magnetic , HFD
  • Journal title
    Contrast Media and Molecular Imaging
  • Serial Year
    2018
  • Record number

    2617804