Myocardial Energy Substrate Metabolism in Heart Failure: From Pathways to Therapeutic Targets

被引:89
作者
Fukushima, Arata [1 ]
Milner, Kenneth [1 ]
Gupta, Abhishek [1 ]
Lopaschuk, Gary D. [1 ]
机构
[1] Univ Alberta, Cardiovasc Translat Sci Inst, Edmonton, AB T6G 2S2, Canada
基金
加拿大健康研究院;
关键词
Glucose oxidation; heart failure; metabolic therapy; myocardial fatty acid oxidation; obesity; post-translational modification; FATTY-ACID OXIDATION; PROLIFERATOR-ACTIVATED-RECEPTOR; PYRUVATE-DEHYDROGENASE COMPLEX; IDIOPATHIC DILATED CARDIOMYOPATHY; RANDOMIZED CONTROLLED-TRIAL; PROPIONYL-L-CARNITINE; FAILING HUMAN HEART; MALONYL-COENZYME-A; LEFT-VENTRICULAR DYSFUNCTION; CARDIAC INSULIN-RESISTANCE;
D O I
10.2174/1381612821666150710150445
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Despite recent advances in therapy, heart failure remains a major cause of mortality and morbidity and is a growing healthcare burden worldwide. Alterations in myocardial energy substrate metabolism are a hallmark of heart failure, and are associated with an energy deficit in the failing heart. Previous studies have shown that a metabolic shift from mitochondrial oxidative metabolism to glycolysis, as well as an uncoupling between glycolysis and glucose oxidation, plays a crucial role in the development of cardiac inefficiency and functional impairment in heart failure. Therefore, optimizing energy substrate utilization, particularly by increasing mitochondrial glucose oxidation, can be a potentially promising approach to decrease the severity of heart failure by improving mechanical cardiac efficiency. One approach to stimulating myocardial glucose oxidation is to inhibit fatty acid oxidation. This review will overview the physiological regulation of both myocardial fatty acid and glucose oxidation in the heart, and will discuss what alterations in myocardial energy substrate metabolism occur in the failing heart. Furthermore, lysine acetylation has been recently identified as a novel post-translational pathway by which mitochondrial enzymes involved in all aspects of cardiac energy metabolism can be regulated. Thus, we will also discuss the effect of acetylation of metabolic enzymes on myocardial energy substrate preference in the settings of heart failure. Finally, we will focus on pharmacological interventions that target enzymes involved in fatty acid uptake, fatty acid oxidation, transcriptional regulation of fatty acid oxidation, and glucose oxidation to treat heart failure.
引用
收藏
页码:3654 / 3664
页数:11
相关论文
共 166 条
[1]   Cardiac hypertrophy with preserved contractile function after selective deletion of GLUT4 from the heart [J].
Abel, ED ;
Kaulbach, HC ;
Tian, R ;
Hopkins, JCA ;
Duffy, J ;
Doetschman, T ;
Minnemann, T ;
Boers, ME ;
Hadro, E ;
Oberste-Berghaus, C ;
Quist, W ;
Lowell, BB ;
Ingwall, JS ;
Kahn, BB .
JOURNAL OF CLINICAL INVESTIGATION, 1999, 104 (12) :1703-1714
[2]   Metabolic Modulator Perhexiline Corrects Energy Deficiency and Improves Exercise Capacity in Symptomatic Hypertrophic Cardiomyopathy [J].
Abozguia, Khalid ;
Elliott, Perry ;
McKenna, William ;
Phan, Thanh Trung ;
Nallur-Shivu, Ganesh ;
Ahmed, Ibrar ;
Maher, Abdul R. ;
Kaur, Kulvinder ;
Taylor, Jenny ;
Henning, Anke ;
Ashrafian, Houman ;
Watkins, Hugh ;
Frenneaux, Michael .
CIRCULATION, 2010, 122 (16) :1562-U56
[3]   Selective versus nonselective β-adrenergic receptor blockade in chronic heart failure:: differential effects on myocardial energy substrate utilization [J].
Al-Hesayen, A ;
Azevedo, ER ;
Floras, JS ;
Hollingshead, S ;
Lopaschuk, GD ;
Parker, JD .
EUROPEAN JOURNAL OF HEART FAILURE, 2005, 7 (04) :618-623
[4]   Sirt1 regulates aging and resistance to oxidative stress in the heart [J].
Alcendor, Ralph R. ;
Gao, Shumin ;
Zhai, Peiyong ;
Zablocki, Daniela ;
Holle, Eric ;
Yu, Xianzhong ;
Tian, Bin ;
Wagner, Thomas ;
Vatner, Stephen F. ;
Sadoshima, Junichi .
CIRCULATION RESEARCH, 2007, 100 (10) :1512-1521
[5]   Obesity-induced lysine acetylation increases cardiac fatty acid oxidation and impairs insulin signalling [J].
Alrob, Osama Abo ;
Sankaralingam, Sowndramalingam ;
Ma, Cary ;
Wagg, Cory S. ;
Fillmore, Natasha ;
Jaswal, Jagdip S. ;
Sack, Michael N. ;
Lehner, Richard ;
Gupta, Mahesh P. ;
Michelakis, Evangelos D. ;
Padwal, Raj S. ;
Johnstone, David E. ;
Sharma, Arya M. ;
Lopaschuk, Gary D. .
CARDIOVASCULAR RESEARCH, 2014, 103 (04) :485-497
[6]   Role of CoA and acetyl-CoA in regulating cardiac fatty acid and glucose oxidation [J].
Alrob, Osama Abo ;
Lopaschuk, Gary D. .
BIOCHEMICAL SOCIETY TRANSACTIONS, 2014, 42 :1043-1051
[7]  
Anand IS, 1999, EUR HEART J, V20, P70
[8]  
Anderson KA, 2012, ESSAYS BIOCHEM, V52, P23, DOI [10.1042/BSE0520023, 10.1042/bse0520023]
[9]   SirT1 Gain of Function Increases Energy Efficiency and Prevents Diabetes in Mice [J].
Banks, Alexander S. ;
Kon, Ning ;
Knight, Colette ;
Matsumoto, Michihiro ;
Gutierrez-Juarez, Roger ;
Rossetti, Luciano ;
Gu, Wei ;
Accili, Domenico .
CELL METABOLISM, 2008, 8 (04) :333-341
[10]   The effects of β1-blockade on oxidative metabolism and the metabolic cost of ventricular work in patients with left ventricular dysfunction -: A double-blind, placebo-controlled, positron-emission tomography study [J].
Beanlands, RSB ;
Nahmias, C ;
Gordon, E ;
Coates, G ;
deKemp, R ;
deKemp, R ;
Firnau, G ;
Fallen, E .
CIRCULATION, 2000, 102 (17) :2070-2075