Mitochondrial NAD+/NADH Redox State and Diabetic Cardiomyopathy

被引:163
作者
Berthiaume, Jessica M. [1 ]
Kurdys, Jacob G. [2 ]
Muntean, Danina M. [3 ]
Rosca, Mariana G. [2 ]
机构
[1] Case Western Reserve Univ, Dept Physiol & Biophys, Sch Med, Cleveland, OH 44106 USA
[2] Cent Michigan Univ, Dept Foundat Sci, Coll Med, Res Bldg Room 105,2630 Denison Dr, Mt Pleasant, MI 48858 USA
[3] Victor Babes Univ Med & Pharm, Dept Funct Sci Pathophysiol, Timisoara, Romania
关键词
NAD; NADH; redox balance; mitochondria; diabetes; cardiomyopathy; FATTY-ACID OXIDATION; TRANSCRIPTIONAL COACTIVATOR PGC-1-ALPHA; CONGESTIVE-HEART-FAILURE; LYSINE ACETYLATION; DIASTOLIC DYSFUNCTION; INSULIN-RESISTANCE; CONTRACTILE DYSFUNCTION; SUPEROXIDE-PRODUCTION; PROTEIN-ACETYLATION; GLUCOSE-OXIDATION;
D O I
10.1089/ars.2017.7415
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
Significance: Diabetic cardiomyopathy (DCM) is a frequent complication occurring even in well-controlled asymptomatic diabetic patients, and it may advance to heart failure (HF). Recent Advances: The diabetic heart is characterized by a state of metabolic rigidity involving enhanced rates of fatty acid uptake and mitochondrial oxidation as the predominant energy source, and it exhibits mitochondrial electron transport chain defects. These alterations promote redox state changes evidenced by a decreased NAD(+)/NADH ratio associated with an increase in acetyl-CoA/CoA ratio. NAD(+) is a co-substrate for deacetylases, sirtuins, and a critical molecule in metabolism and redox signaling; whereas acetyl-CoA promotes protein lysine acetylation, affecting mitochondrial integrity and causing epigenetic changes. Critical Issues: DCM lacks specific therapies with treatment only in later disease stages using standard, palliative HF interventions. Traditional therapy targeting neurohormonal signaling and hemodynamics failed to improve mortality rates. Though mitochondrial redox state changes occur in the heart with obesity and diabetes, how the mitochondrial NAD(+)/NADH redox couple connects the remodeled energy metabolism with mitochondrial and cytosolic antioxidant defense and nuclear epigenetic changes remains to be determined. Mitochondrial therapies targeting the mitochondrial NAD(+)/NADH redox ratio may alleviate cardiac dysfunction. Future Directions: Specific therapies must be supported by an optimal understanding of changes in mitochondrial redox state and how it influences other cellular compartments; this field has begun to surface as a therapeutic target for the diabetic heart. We propose an approach based on an alternate mitochondrial electron transport that normalizes the mitochondrial redox state and improves cardiac function in diabetes.
引用
收藏
页码:375 / 398
页数:24
相关论文
共 200 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]
A role for the mitochondrial deacetylase Sirt3 in regulating energy homeostasis [J].
Ahn, Bong-Hyun ;
Kim, Hyun-Seok ;
Song, Shiwei ;
Lee, In Hye ;
Liu, Jie ;
Vassilopoulos, Athanassios ;
Deng, Chu-Xia ;
Finkel, Toren .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2008, 105 (38) :14447-14452
[3]
OXPHOS-Mediated Induction of NAD+ Promotes Complete Oxidation of Fatty Acids and Interdicts Non-Alcoholic Fatty Liver Disease [J].
Akie, Thomas E. ;
Liu, Lijun ;
Nam, Minwoo ;
Lei, Shi ;
Cooper, Marcus P. .
PLOS ONE, 2015, 10 (05)
[4]
Differences among cell types in NAD+ compartmentalization:: A comparison of neurons, astrocytes, and cardiac myocytes [J].
Alano, Conrad C. ;
Tran, Alexandra ;
Tao, Rong ;
Ying, Weihai ;
Karliner, Joel S. ;
Swanson, Raymond A. .
JOURNAL OF NEUROSCIENCE RESEARCH, 2007, 85 (15) :3378-3385
[5]
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
[6]
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
[7]
Subclinical Left Ventricular Longitudinal and Radial Systolic Dysfunction in Children and Adolescents with Type 1 Diabetes Mellitus [J].
Altun, Gurkan ;
Babaoglu, Kadir ;
Binnetoglu, Koksal ;
Ozsu, Elif ;
Mutlu, Rahime G. Yesiltepe ;
Hatun, Sukru .
ECHOCARDIOGRAPHY-A JOURNAL OF CARDIOVASCULAR ULTRASOUND AND ALLIED TECHNIQUES, 2016, 33 (07) :1032-1039
[8]
Substrate-Specific Derangements in Mitochondrial Metabolism and Redox Balance in the Atrium of the Type 2 Diabetic Human Heart [J].
Anderson, Ethan J. ;
Kypson, Alan P. ;
Rodriguez, Evelio ;
Anderson, Curtis A. ;
Lehr, Eric J. ;
Neufer, P. Darrell .
JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2009, 54 (20) :1891-1898
[9]
Mitochondrial H2O2 emission and cellular redox state link excess fat intake to insulin resistance in both rodents and humans [J].
Anderson, Ethan J. ;
Lustig, Mary E. ;
Boyle, Kristen E. ;
Woodlief, Tracey L. ;
Kane, Daniel A. ;
Lin, Chien-Te ;
Price, Jesse W., III ;
Kang, Li ;
Rabinovitch, Peter S. ;
Szeto, Hazel H. ;
Houmard, Joseph A. ;
Cortright, Ronald N. ;
Wasserman, David H. ;
Neufer, P. Darrell .
JOURNAL OF CLINICAL INVESTIGATION, 2009, 119 (03) :573-581
[10]
Pharmacological approaches to restore mitochondrial function [J].
Andreux, Penelope A. ;
Houtkooper, Riekelt H. ;
Auwerx, Johan .
NATURE REVIEWS DRUG DISCOVERY, 2013, 12 (06) :465-483