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Role of AMP deaminase in diabetic cardiomyopathy
Tetsuji Miura1,2, Hidemichi Kouzu3, Masaya Tanno3,4
1Department of Cardiovascular, Renal and Metabolic Medicine, Sapporo Medical University School of Medicine, Sapporo, Japan. miura@sapmed.ac.jp.
Insights
AMP deaminase (AMPD) upregulation contributes to diabetic cardiomyopathy by increasing reactive oxygen species and depleting energy stores. This enzyme
Area of Science:
- Cardiovascular Biology
- Metabolic Diseases
- Biochemistry
Background:
- Diabetes mellitus is a leading cause of heart failure, including diabetic cardiomyopathy, characterized by cardiac dysfunction independent of comorbidities.
- Key factors in diabetic cardiomyopathy include reactive oxygen species (ROS) production, impaired calcium handling, and altered energy metabolism.
Purpose of the Study:
- To review the role of AMP deaminase (AMPD) in the development of diabetic cardiomyopathy.
- To summarize AMPD expression, function, and its contribution to cardiac contractile dysfunction in diabetes.
Main Methods:
- Literature review focusing on AMPD expression and function in cardiac tissue.
- Analysis of studies investigating AMPD's role in diabetes-induced cardiac dysfunction, ROS generation, and energy metabolism.
Main Results:
- AMP deaminase (AMPD) is upregulated in diabetic hearts, liver, and skeletal muscle.
- Upregulated AMPD contributes to diabetic cardiomyopathy via increased ROS, adenine nucleotide depletion, and impaired mitochondrial respiration.
- AMPD's detrimental effects are pronounced under increased cardiac workload.
Conclusions:
- AMP deaminase plays a significant role in the pathogenesis of diabetic cardiomyopathy.
- Targeting AMPD may offer a therapeutic strategy for diabetic heart disease.
Abstract:
Diabetes mellitus is one of the major causes of ischemic and nonischemic heart failure. While hypertension and coronary artery disease are frequent comorbidities in patients with diabetes, cardiac contractile dysfunction and remodeling occur in diabetic patients even without comorbidities, which is referred to as diabetic cardiomyopathy. Investigations in recent decades have demonstrated that the production of reactive oxygen species (ROS), impaired handling of intracellular Ca2+, and alterations in energy metabolism are involved in the development of diabetic cardiomyopathy. AMP deaminase (AMPD) directly regulates adenine nucleotide metabolism and energy transfer by adenylate kinase and indirectly modulates xanthine oxidoreductase-mediated pathways and AMP-activated protein kinase-mediated signaling. Upregulation of AMPD in diabetic hearts was first reported more than 30 years ago, and subsequent studies showed similar upregulation in the liver and skeletal muscle. Evidence for the roles of AMPD in diabetes-induced fatty liver, sarcopenia, and heart failure has been accumulating. A series of our recent studies showed that AMPD localizes in the mitochondria-associated endoplasmic reticulum membrane as well as the sarcoplasmic reticulum and cytosol and participates in the regulation of mitochondrial Ca2+ and suggested that upregulated AMPD contributes to contractile dysfunction in diabetic cardiomyopathy via increased generation of ROS, adenine nucleotide depletion, and impaired mitochondrial respiration. The detrimental effects of AMPD were manifested at times of increased cardiac workload by pressure loading. In this review, we briefly summarize the expression and functions of AMPD in the heart and discuss the roles of AMPD in diabetic cardiomyopathy, mainly focusing on contractile dysfunction caused by this disorder.
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