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Short-chain aldehyde-derived ligands for RAGE and their actions on endothelial cells
Yasuhiko Yamamoto1, Hideto Yonekura, Takuo Watanabe
1Department of Biochemistry and Molecular Vascular Biology, Kanazawa University Graduate School of Medical Science, 13-1 Takara-machi, Kanazawa 920-8640, Japan.
Abstract:
The formation and accumulation of advanced glycation endproducts (AGE) have been implicated in the development of diabetic vascular complications. Their biological responses are known to be mediated by the receptor for AGE (RAGE). Recently, AGE have been proposed to be derived not only from the classical Maillard reaction but also from other pathways of sugar autoxidation and metabolism. Here, we report the identification of glyceraldehydes (Gcer)- and glycolaldehyde (Gcol)-derived AGE as RAGE ligands and their presence in vivo. The apparent dissociation constants assessed by surface-plasmon resonance (SPR) analysis with purified human RAGE proteins were 360 nM for Gcer-AGE and 1.35 microM for Gcol-AGE. The radiolabeled-ligand binding assay with RAGE-expressing COS-7 cells revealed similar association kinetics. Competitive SPR assay with antibodies specific to the respective AGE fractions demonstrated abundant existence of both Gcer- and Gcol-AGE in RAGE affinity-purified proteins from human sera. The serum contents of Gcer- and Gcol-AGE in a diabetic patient were about twice as high as those in a healthy control. Functionally, Gcer- and Gcol-AGE upregulated the endothelial cell levels of mRNA for vascular endothelial growth factor (VEGF) and the secretion of its protein product into the culture media and DNA synthesis in a dose-dependent manner. Further, these endothelial responses were augmented by RAGE overexpression. The results suggest that RAGE engagement of Gcer- and Gcol-AGE may elicit angiogenesis through the induction of autocrine VEGF, thereby contributing to the development and progression of diabetic angiopathies.
Insights
New advanced glycation endproducts (AGE), derived from glyceraldehyde (Gcer) and glycolaldehyde (Gcol), bind to the receptor for AGE (RAGE). These AGEs are present in human serum and promote angiogenesis, potentially contributing to diabetic vascular complications.
Area of Science:
- Biochemistry
- Molecular Biology
- Endocrinology
Background:
- Advanced glycation endproducts (AGE) are linked to diabetic vascular complications.
- The receptor for AGE (RAGE) mediates the biological responses to AGE.
- AGE formation may involve pathways beyond the classical Maillard reaction.
Purpose of the Study:
- To identify novel AGEs that act as RAGE ligands.
- To investigate the in vivo presence and role of these AGEs in diabetes.
- To elucidate the functional consequences of Gcer-AGE and Gcol-AGE interaction with RAGE.
Main Methods:
- Surface-plasmon resonance (SPR) to assess binding affinity of Gcer-AGE and Gcol-AGE to RAGE.
- Radiolabeled-ligand binding assays using RAGE-expressing cells.
- Competitive SPR assays with antibodies to quantify AGEs in human serum proteins.
- Endothelial cell culture to evaluate the effects of AGEs on VEGF expression and DNA synthesis.
Main Results:
- Glyceraldehyde (Gcer)- and glycolaldehyde (Gcol)-derived AGEs were identified as RAGE ligands with specific binding affinities.
- Both Gcer-AGE and Gcol-AGE were found in human serum, with elevated levels in a diabetic patient.
- Gcer-AGE and Gcol-AGE dose-dependently upregulated endothelial vascular endothelial growth factor (VEGF) mRNA and protein, and DNA synthesis.
- RAGE overexpression enhanced these endothelial cell responses to Gcer-AGE and Gcol-AGE.
Conclusions:
- Gcer-AGE and Gcol-AGE are novel RAGE ligands present in vivo.
- These AGEs may contribute to diabetic angiopathies by promoting angiogenesis via autocrine VEGF induction.
- Targeting RAGE-mediated pathways of Gcer-AGE and Gcol-AGE could offer therapeutic strategies for diabetic vascular complications.
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