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Advanced glycation end products (AGEs) and cardiovascular disease (CVD) in diabetes
Sho-Ichi Yamagishi1, Takanori Matsui, Shin-Ichiro Ueda
1Department of Medicine, Division of Cardiovascular Medicine, Kurume University School of Medicine, Kurume 830-0011, Japan. shoichi@med.kurume-u.ac.jp
Insights
Advanced glycation end products (AGEs) contribute to thrombotic abnormalities in diabetes, a phenomenon linked to
Area of Science:
- Endocrinology
- Vascular Biology
- Diabetology
Background:
- Diabetes mellitus accelerates atherosclerosis and microvascular complications, leading to significant morbidity and mortality.
- Thrombotic diathesis in diabetes involves endothelial dysfunction, platelet activation, hypercoagulability, and impaired fibrinolysis.
- The 'hyperglycemic memory' effect suggests persistent vascular damage despite improved glycemic control.
Purpose of the Study:
- To review the role of advanced glycation end products (AGEs) in diabetic thrombotic abnormalities.
- To elucidate the molecular mechanisms underlying AGEs' impact on vascular complications in diabetes.
Main Methods:
- Review of clinical studies, including the Diabetes Control and Complications Trial-Epidemiology of Diabetes Interventions and Complications (DCCT-EDIC) Research.
- Analysis of biochemical pathways implicated in diabetic vascular complications, focusing on AGEs formation and accumulation.
- Discussion of AGEs' effects on endothelial cell function, platelet activity, coagulation, and fibrinolysis.
Main Results:
- Intensive therapy in type 1 diabetes demonstrated persistent risk reduction for retinopathy and nephropathy.
- Cardiovascular event risk was reduced by approximately 50% in type 1 diabetic patients post-intensive therapy.
- Advanced glycation end products (AGEs) formation and accumulation align with the 'hyperglycemic memory' theory.
Conclusions:
- Advanced glycation end products (AGEs) play a critical role in thrombotic abnormalities associated with diabetes.
- AGEs exert deleterious effects on endothelial cells, platelet activation, coagulation, and fibrinolytic systems.
- Understanding AGEs' mechanisms is crucial for managing diabetic vascular complications and thrombotic risks.
Abstract:
Accelerated atherosclerosis and microvascular complications are perhaps the leading cause of coronary heart disease, blindness and renal failure, which could account for disabilities and high mortality rates in patients with diabetes. Several mechanisms including endothelial cell damage, platelet activation and aggregation, hypercoagulability, and impaired fibrinolysis are involved in the pathogenesis of thrombogenic diathesis in diabetes. However, the underlying molecular mechanism is not fully elucidated. A recent clinical study, the Diabetes Control and Complications Trial-Epidemiology of Diabetes Interventions and Complications (DCCT-EDIC) Research, has revealed that the reduction in the risk of progressive retinopathy and nephropathy resulting from intensive therapy in patients with type 1 diabetes persist for at least several years, despite increasing hyperglycemia. In addition, intensive therapy during the DCCT also reduced the risk of cardiovascular events by about 50 % in type 1 diabetic patients 11 years after the end of the trial. These clinical studies strongly suggest that so-called 'hyperglycemic memory' causes chronic abnormalities in diabetic vessels that are not easily reversed, even by subsequent, relatively good control of blood glucose. Among various biochemical pathways implicated in diabetic vascular complications, the process of formation and accumulation of advanced glycation end products (AGEs) and their mode of action are most compatible with the theory 'hyperglycemic memory'. In this review, we discuss the role of AGEs in thrombogenic abnormalities in diabetes, especially focusing on the deleterious effects of these macroproteins on endothelial cell function, platelet activation and aggregation, coagulation and fibrinolytic systems.
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