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      Metabolomic analysis of serum and myocardium in compensated heart failure after myocardial infarction

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          Abstract

          To determine the metabolic adaptations to compensated heart failure using a reproducible model of myocardial infarction and an unbiased metabolic screen. To address the limitations in sample availability and model variability observed in preclinical and clinical metabolic investigations of heart failure. Metabolomic analysis was performed on serum and myocardial tissue from rabbits after myocardial infarction (MI) was induced by cryo-injury of the left ventricular free wall. Rabbits followed for 12 weeks after MI exhibited left ventricular dilation and depressed systolic function as determined by echocardiography. Serum and tissue from the viable left ventricular free wall, interventricular septum and right ventricle were analyzed using a gas chromatography time of flight mass spectrometry-based untargeted metabolomics assay for primary metabolites. Unique results included: a two- three-fold increase in taurine levels in all three ventricular regions of MI rabbits and similarly, the three regions had increased inosine levels compared to sham controls. Reduced myocardial levels of myo-inositol in the myocardium of MI animals point to altered phospholipid metabolism and membrane receptor function in heart failure. Metabolite profiles also provide evidence for responses to oxidative stress and an impairment in TCA cycle energy production in the failing heart. Our results revealed metabolic changes during compensated cardiac dysfunction and suggest potential targets for altering the progression of heart failure.

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          Author and article information

          Journal
          Life Sciences
          Life Sciences
          Elsevier BV
          00243205
          March 2019
          March 2019
          : 221
          : 212-223
          Article
          10.1016/j.lfs.2019.01.040
          6445392
          30731143
          a03c4ff7-f55e-4872-9ca7-0f43d42f8ce9
          © 2019

          https://www.elsevier.com/tdm/userlicense/1.0/

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