Receptor for Advanced Glycation End Products (RAGE) and Mechanisms and Therapeutic Opportunities in Diabetes and Cardiovascular Disease: Insights From Human Subjects and Animal Models

被引:129
作者
Egana-Gorrono, Lander [1 ]
Lopez-Diez, Raquel [1 ]
Yepuri, Gautham [1 ]
Ramirez, Lisa S. [2 ]
Reverdatto, Sergey [2 ]
Gugger, Paul F. [1 ]
Shekhtman, Alexander [2 ]
Ramasamy, Ravichandran [1 ]
Schmidt, Ann Marie [1 ]
机构
[1] NYU, Sch Med, Diabet Res Program, Div Endocrinol Diabet & Metab,Dept Med, New York, NY USA
[2] SUNY Albany, Dept Chem, Albany, NY 12222 USA
来源
FRONTIERS IN CARDIOVASCULAR MEDICINE | 2020年 / 7卷
关键词
diabetes; obesity; cardiovascular disease; peripheral arterial disease; RAGE; DIAPH1; ENDOGENOUS SECRETORY RECEPTOR; PERIPHERAL ARTERIAL-DISEASE; SMOOTH-MUSCLE-CELLS; SOLUBLE RECEPTOR; SIGNAL-TRANSDUCTION; KEY MODULATOR; ATHEROSCLEROTIC PLAQUES; VASCULAR CALCIFICATION; MYOCARDIAL-INFARCTION; ATRIAL-FIBRILLATION;
D O I
10.3389/fcvm.2020.00037
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Obesity and diabetes are leading causes of cardiovascular morbidity and mortality. Although extensive strides have been made in the treatments for non-diabetic atherosclerosis and its complications, for patients with diabetes, these therapies provide less benefit for protection from cardiovascular disease (CVD). These considerations spur the concept that diabetes-specific, disease-modifying therapies are essential to identify, especially as the epidemics of obesity and diabetes continue to expand. Hence, as hyperglycemia is a defining feature of diabetes, it is logical to probe the impact of the specific consequences of hyperglycemia on the vessel wall, immune cell perturbation, and endothelial dysfunction-all harbingers to the development of CVD. In this context, high levels of blood glucose stimulate the formation of the irreversible advanced glycation end products, the products of non-enzymatic glycation and oxidation of proteins and lipids. AGEs accumulate in diabetic circulation and tissues and the interaction of AGEs with their chief cellular receptor, receptor for AGE or RAGE, contributes to vascular and immune cell perturbation. The cytoplasmic domain of RAGE lacks endogenous kinase activity; the discovery that this intracellular domain of RAGE binds to the formin, DIAPH1, and that DIAPH1 is essential for RAGE ligand-mediated signal transduction, identifies the specific cellular means by which RAGE functions and highlights a new target for therapeutic interruption of RAGE signaling. In human subjects, prominent signals for RAGE activity include the presence and levels of two forms of soluble RAGE, sRAGE, and endogenous secretory (es) RAGE. Further, genetic studies have revealed single nucleotide polymorphisms (SNPs) of the AGER gene (AGER is the gene encoding RAGE) and DIAPH1, which display associations with CVD. This Review presents current knowledge regarding the roles for RAGE and DIAPH1 in the causes and consequences of diabetes, from obesity to CVD. Studies both from human subjects and animal models are presented to highlight the breadth of evidence linking RAGE and DIAPH1 to the cardiovascular consequences of these metabolic disorders.
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页数:15
相关论文
共 135 条
  • [91] Advanced Glycation End-products Enhance Calcification in Vascular Smooth Muscle Cells
    Ren, X.
    Shao, H.
    Wei, Q.
    Sun, Z.
    Liu, N.
    [J]. JOURNAL OF INTERNATIONAL MEDICAL RESEARCH, 2009, 37 (03) : 847 - 854
  • [92] Association of DIAPH1 gene polymorphisms with ischemic stroke
    Ren, Zhanyun
    Chen, Xiaotian
    Tang, Wuzhuang
    Li, Jie
    Yang, Song
    Chen, Yanchun
    Zhao, Xianghai
    Zong, Huihua
    Liu, Chunlan
    Shen, Chong
    [J]. AGING-US, 2020, 12 (01): : 416 - 435
  • [93] SCHMIDT AM, 1992, J BIOL CHEM, V267, P14987
  • [94] Soluble RAGEs - Prospects for treating & tracking metabolic and inflammatory disease
    Schmidt, Ann Marie
    [J]. VASCULAR PHARMACOLOGY, 2015, 72 : 1 - 8
  • [95] Sedaghat F, 2008, HIPPOKRATIA, V12, P198
  • [96] SUPPRESSED MMP-9 ACTIVITY IN MYOCARDIAL INFARCTION-RELATED CARDIOGENIC SHOCK IMPLIES DIMINISHED RAGE DEGRADATION
    Selejan, Simina-Ramona
    Hewera, Lisa
    Hohl, Matthias
    Kazakov, Andrey
    Ewen, Sebastian
    Kindermann, Ingrid
    Boehm, Michael
    Link, Andreas
    [J]. SHOCK, 2017, 48 (01): : 18 - 28
  • [97] Pathological Implications of Receptor for Advanced Glycation End-Product (AGER) Gene Polymorphism
    Serveaux-Dancer, Marine
    Jabaudon, Matthieu
    Creveaux, Isabelle
    Belville, Corinne
    Blondonnet, Raiko
    Gross, Christelle
    Constantin, Jean-Michel
    Blanchon, Loic
    Sapin, Vincent
    [J]. DISEASE MARKERS, 2019, 2019
  • [98] RAGE Modulates Hypoxia/Reoxygenation Injury in Adult Murine Cardiomyocytes via JNK and GSK-3β Signaling Pathways
    Shang, Linshan
    Ananthakrishnan, Radha
    Li, Qing
    Quadri, Nosirudeen
    Abdillahi, Mariane
    Zhu, Zhengbin
    Qu, Wu
    Rosario, Rosa
    Toure, Fatouma
    Yan, Shi Fang
    Schmidt, Ann Marie
    Ramasamy, Ravichandran
    [J]. PLOS ONE, 2010, 5 (04):
  • [99] Glycation & the RAGE axis: targeting signal transduction through DIAPH1
    Shekhtman, Alexander
    Ramasamy, Ravichandran
    Schmidt, Ann Marie
    [J]. EXPERT REVIEW OF PROTEOMICS, 2017, 14 (02) : 147 - 156
  • [100] The mDial Formin Is Required for Neutrophil Polarization, Migration, and Activation of the LARG/RhoA/ROCK Signaling Axis during Chemotaxis
    Shi, Yongquan
    Zhang, Jinyi
    Mullin, Michael
    Doug, Baoxia
    Alberts, Arthur S.
    Siminovitch, Katherine A.
    [J]. JOURNAL OF IMMUNOLOGY, 2009, 182 (06) : 3837 - 3845