Literature DB >> 30462352

Metabolic remodelling of glucose, fatty acid and redox pathways in the heart of type 2 diabetic mice.

Sonia Cortassa1, Viviane Caceres2,3, Carlo G Tocchetti2,4, Michel Bernier5, Rafael de Cabo5, Nazareno Paolocci2,6, Steven J Sollott1, Miguel A Aon1,5.   

Abstract

KEY POINTS: Hearts from type 2 diabetic animals display perturbations in excitation-contraction coupling, impairing myocyte contractility and delaying relaxation, along with altered substrate consumption patterns. Under high glucose and β-adrenergic stimulation conditions, palmitate can, at least in part, offset left ventricle (LV) dysfunction in hearts from diabetic mice, improving contractility and relaxation while restoring coronary perfusion pressure. Fluxome calculations of central catabolism in diabetic hearts show that, in the presence of palmitate, there is a metabolic remodelling involving tricarboxylic acid cycle, polyol and pentose phosphate pathways, leading to improved redox balance in cytoplasmic and mitochondrial compartments. Under high glucose and increased energy demand, the metabolic/fluxomic redirection leading to restored redox balance imparted by palmitate helps explain maintained LV function and may contribute to designing novel therapeutic approaches to prevent cardiac dysfunction in diabetic patients. ABSTRACT: Type-2 diabetes (T2DM) leads to reduced myocardial performance, and eventually heart failure. Excessive accumulation of lipids and glucose is central to T2DM cardiomyopathy. Previous data showed that palmitate (Palm) or glutathione preserved heart mitochondrial energy/redox balance under excess glucose, rescuing β-adrenergic-stimulated cardiac excitation-contraction coupling. However, the mechanisms underlying the accompanying improved contractile performance have been largely ignored. Herein we explore in intact heart under substrate excess the metabolic remodelling associated with cardiac function in diabetic db/db mice subjected to stress given by β-adrenergic stimulation with isoproterenol and high glucose compared to their non-diabetic controls (+/+, WT) under euglycaemic conditions. When perfused with Palm, T2DM hearts exhibited improved contractility/relaxation compared to WT, accompanied by extensive metabolic remodelling as demonstrated by metabolomics-fluxomics combined with bioinformatics and computational modelling. The T2DM heart metabolome showed significant differences in the abundance of metabolites in pathways related to glucose, lipids and redox metabolism. Using a validated computational model of heart's central catabolism, comprising glucose and fatty acid (FA) oxidation in cytoplasmic and mitochondrial compartments, we estimated that fluxes through glucose degradation pathways are ∼2-fold lower in heart from T2DM vs. WT under all conditions studied. Palm addition elicits improvement of the redox status via enhanced β-oxidation and decreased glucose uptake, leading to flux-redirection away from redox-consuming pathways (e.g. polyol) while maintaining the flux through redox-generating pathways together with glucose-FA 'shared fuelling' of oxidative phosphorylation. Thus, available FAs such as Palm may help improve function via enhanced redox balance in T2DM hearts during peaks of hyperglycaemia and increased workload.
© 2018 The Authors. The Journal of Physiology © 2018 The Physiological Society.

Entities:  

Keywords:  diabetic cardiomyopathy; fluxomics; metabolomics

Year:  2018        PMID: 30462352     DOI: 10.1113/JP276824

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  7 in total

1.  Integrated Multiomics, Bioinformatics, and Computational Modeling Approaches to Central Metabolism in Organs.

Authors:  Sonia Cortassa; Pierre Villon; Steven J Sollott; Miguel A Aon
Journal:  Methods Mol Biol       Date:  2022

Review 2.  Guidelines on models of diabetic heart disease.

Authors:  Lisa C Heather; Anne D Hafstad; Ganesh V Halade; Romain Harmancey; Kimberley M Mellor; Paras K Mishra; Erin E Mulvihill; Miranda Nabben; Michinari Nakamura; Oliver J Rider; Matthieu Ruiz; Adam R Wende; John R Ussher
Journal:  Am J Physiol Heart Circ Physiol       Date:  2022-06-03       Impact factor: 5.125

3.  Acetate, a Short-Chain Fatty Acid, Acutely Lowers Heart Rate and Cardiac Contractility Along with Blood Pressure.

Authors:  Brian G Poll; Jiaojiao Xu; Seungho Jun; Jason Sanchez; Nathan A Zaidman; Xiaojun He; Laeben Lester; Dan E Berkowitz; Nazareno Paolocci; Wei Dong Gao; Jennifer L Pluznick
Journal:  J Pharmacol Exp Ther       Date:  2021-01-07       Impact factor: 4.030

4.  Mitochondrial Utilization of Competing Fuels Is Altered in Insulin Resistant Skeletal Muscle of Non-obese Rats (Goto-Kakizaki).

Authors:  Nicola Lai; Ciarán E Fealy; Chinna M Kummitha; Silvia Cabras; John P Kirwan; Charles L Hoppel
Journal:  Front Physiol       Date:  2020-06-16       Impact factor: 4.566

Review 5.  Effects of Lipid Overload on Heart in Metabolic Diseases.

Authors:  An Yan; Guinan Xie; Xinya Ding; Yi Wang; Liping Guo
Journal:  Horm Metab Res       Date:  2021-12-10       Impact factor: 2.936

6.  Ultrahigh-Resolution Mass Spectrometry-Based Platform for Plasma Metabolomics Applied to Type 2 Diabetes Research.

Authors:  Yanlong Zhu; Benjamin Wancewicz; Michael Schaid; Timothy N Tiambeng; Kent Wenger; Yutong Jin; Heino Heyman; Christopher J Thompson; Aiko Barsch; Elizabeth D Cox; Dawn B Davis; Allan R Brasier; Michelle E Kimple; Ying Ge
Journal:  J Proteome Res       Date:  2020-10-15       Impact factor: 4.466

7.  Diabetes Increases the Vulnerability of the Cardiac Mitochondrial Network to Criticality.

Authors:  Larissa Vetter; Sonia Cortassa; Brian O'Rourke; Antonis A Armoundas; Djahida Bedja; Johann M E Jende; Martin Bendszus; Nazareno Paolocci; Steven J Sollot; Miguel A Aon; Felix T Kurz
Journal:  Front Physiol       Date:  2020-03-10       Impact factor: 4.566

  7 in total

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