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Published on: December 21, 2011
The RAGE axis: a fundamental mechanism signaling danger to the vulnerable vasculature
Shi Fang Yan1, Ravichandran Ramasamy, Ann Marie Schmidt
1Division of Surgical Science, Department of Surgery, Columbia University, 630 W 168th St, P&S 17-401, New York, NY 10032, USA.
Abstract:
The immunoglobulin superfamily molecule RAGE (receptor for advanced glycation end product) transduces the effects of multiple ligands, including AGEs (advanced glycation end products), advanced oxidation protein products, S100/calgranulins, high-mobility group box-1, amyloid-beta peptide, and beta-sheet fibrils. In diabetes, hyperglycemia likely stimulates the initial burst of production of ligands that interact with RAGE and activate signaling mechanisms. Consequently, increased generation of proinflammatory and prothrombotic molecules and reactive oxygen species trigger further cycles of oxidative stress via RAGE, thus setting the stage for augmented damage to diabetic tissues in the face of further insults. Many of the ligand families of RAGE have been identified in atherosclerotic plaques and in the infarcted heart. Together with increased expression of RAGE in diabetic settings, we propose that release and accumulation of RAGE ligands contribute to exaggerated cellular damage. Stopping the vicious cycle of AGE-RAGE and RAGE axis signaling in the vulnerable heart and great vessels may be essential in controlling and preventing the consequences of diabetes.
Insights
The receptor for advanced glycation end product (RAGE) pathway exacerbates diabetic complications. Targeting RAGE signaling may prevent cardiovascular damage in diabetes.
Area of Science:
- Cardiovascular Science
- Endocrinology
- Molecular Biology
Background:
- The receptor for advanced glycation end product (RAGE) is implicated in cellular signaling.
- RAGE ligands, including advanced glycation end products (AGEs), are elevated in diabetes.
- RAGE activation contributes to inflammation and oxidative stress.
Purpose of the Study:
- To investigate the role of the RAGE axis in diabetic cardiovascular complications.
- To understand how RAGE signaling contributes to tissue damage in diabetes.
Main Methods:
- Review of existing literature on RAGE, AGEs, and diabetes.
- Analysis of RAGE ligand families found in atherosclerotic plaques and infarcted hearts.
Main Results:
- Hyperglycemia in diabetes stimulates RAGE ligand production.
- RAGE activation leads to increased proinflammatory and prothrombotic molecules and reactive oxygen species.
- Accumulation of RAGE ligands and increased RAGE expression contribute to diabetic tissue damage.
Conclusions:
- The AGE-RAGE axis and RAGE signaling contribute to exaggerated cellular damage in diabetic cardiovascular tissues.
- Inhibiting the RAGE axis may be crucial for preventing diabetes-related heart and great vessel damage.
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