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Receptor for Advanced Glycation End-Products Signaling Interferes with the Vascular Smooth Muscle Cell Contractile
Elie Simard1, Thomas Söllradl1, Jean-Sébastien Maltais1
1Département de Pharmacologie et physiologie, Faculté de Médecine et des Sciences de la Santé de l'Université de Sherbrooke, Sherbrooke, Canada.
Abstract:
Increased blood glucose concentrations promote reactions between glucose and proteins to form advanced glycation end-products (AGE). Circulating AGE in the blood plasma can activate the receptor for advanced end-products (RAGE), which is present on both endothelial and vascular smooth muscle cells (VSMC). RAGE exhibits a complex signaling that involves small G-proteins and mitogen activated protein kinases (MAPK), which lead to increased nuclear factor kappa B (NF-κB) activity. While RAGE signaling has been previously addressed in endothelial cells, little is known regarding its impact on the function of VSMC. Therefore, we hypothesized that RAGE signaling leads to alterations in the mechanical and functional properties of VSMC, which could contribute to complications associated with diabetes. We demonstrated that RAGE is expressed and functional in the A7r5 VSMC model, and its activation by AGE significantly increased NF-κB activity, which is known to interfere with the contractile phenotype of VSMC. The protein levels of the contraction-related transcription factor myocardin were also decreased by RAGE activation with a concomitant decrease in the mRNA and protein levels of transgelin (SM-22α), a regulator of VSMC contraction. Interestingly, we demonstrated that RAGE activation increased the overall cell rigidity, an effect that can be related to an increase in myosin activity. Finally, although RAGE stimulation amplified calcium signaling and slightly myosin activity in VSMC challenged with vasopressin, their contractile capacity was negatively affected. Overall, RAGE activation in VSMC could represent a keystone in the development of vascular diseases associated with diabetes by interfering with the contractile phenotype of VSMC through the modification of their mechanical and functional properties.
Insights
Advanced glycation end-products (AGE) activate the receptor for AGE (RAGE) in vascular smooth muscle cells (VSMC). RAGE activation disrupts VSMC function and mechanical properties, contributing to diabetic vascular complications.
Area of Science:
- Vascular biology
- Diabetic complications
- Cellular signaling
Background:
- High blood glucose leads to advanced glycation end-products (AGE).
- AGE activate the receptor for AGE (RAGE) on endothelial and vascular smooth muscle cells (VSMC).
- RAGE signaling in VSMC is not well understood, particularly its role in diabetes.
Purpose of the Study:
- To investigate the impact of RAGE signaling on VSMC mechanical and functional properties.
- To determine if RAGE activation contributes to diabetes-related vascular complications.
Main Methods:
- Utilized the A7r5 VSMC model to study RAGE expression and function.
- Assessed NF-κB activity, myocardin and transgelin (SM-22α) protein and mRNA levels.
- Measured cell rigidity and myosin activity.
- Evaluated VSMC contractile capacity under vasopressin stimulation.
Main Results:
- RAGE is expressed and functional in A7r5 VSMC.
- AGE-induced RAGE activation increased NF-κB activity and decreased myocardin and SM-22α levels.
- RAGE activation increased cell rigidity and myosin activity.
- RAGE stimulation impaired VSMC contractile capacity despite amplified calcium signaling.
Conclusions:
- RAGE activation in VSMC alters their contractile phenotype and mechanical properties.
- This interference may be a key factor in the vascular diseases associated with diabetes.
- Targeting RAGE signaling could offer therapeutic potential for diabetic vascular complications.
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