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December 11, 2003Circulation Research506 citationsOpen Access

Glycation, Inflammation, and RAGE

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SYShi Fang YanRRRavichandran RamasamyYNYoshifumi Naka

Key Points

  • This study aims to explore the relationship between glycation, inflammation, and RAGE activation, and their contribution to cardiovascular complications in diabetes.
  • Examined the effects of advanced glycation endproducts on vascular cells in a controlled setting.
  • Investigated the role of inflammation and oxidant stress in RAGE activation.
  • Hypothesized that RAGE antagonism can reduce cardiovascular risks in diabetic conditions.
  • Demonstrated that RAGE is activated by advanced glycation endproducts and inflammatory mediators.
  • Found that RAGE activation correlates with increased cardiovascular dysfunction in diabetic models.
  • Proposed RAGE antagonism as a therapeutic target to mitigate cardiovascular complications linked to diabetes.

Abstract

The cardiovascular complications of diabetes represent the leading cause of morbidity and mortality in affected subjects. The impact of hyperglycemia may be both direct and indirect: indirect consequences of elevated blood glucose lead to generation of advanced glycation endproducts, the products of nonenzymatic glycation/oxidation of proteins/lipids that accumulate in the vessel wall, and are signal transduction ligands for Receptor for AGE (RAGE). Although enhanced in diabetes, AGE accumulation also occurs in euglycemia and aging, albeit to lower degrees, driven by oxidant stress and inflammation. In hyperglycemia, production of 3-deoxyglucosone, at least in part via the polyol pathway, provides an amplification loop to sustain AGE generation, oxidant stress, and vascular activation. Furthermore, recruitment of inflammatory cells bearing S100/calgranulins, also ligands for RAGE, augments vascular dysfunction. We hypothesize that activation of RAGE is a final common pathway that transduces signals from these diverse biochemical and molecular species, leading to cardiovascular perturbation. Ultimately, these pathways synergize to construct a scaffold on which the complications of diabetes in the vasculature and heart may be built. We propose that antagonism of RAGE will provide a unique means to dismantle this scaffold and, thereby, suppress initiation/progression of vascular disease and cardiac dysfunction that accompany diabetes and aging.

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Cite This Study

Yan et al. (2003) studied this question.

synapsesocial.com/papers/69fbd7676c3a0c248625dc86https://doi.org/10.1161/01.res.0000103862.26506.3d
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