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Published on: November 18, 2011
Exendin-4 promotes endothelial barrier enhancement via PKA- and Epac1-dependent Rac1 activation
Ai Q Li1, Liang Zhao1, Teng F Zhou1
1Institute of Cardiovascular Science, and Key Laboratory of Molecular Cardiovascular Science of Ministry of Education, Peking University Health Science Center, Beijing, China.
Abstract:
Among emerging antidiabetic agents, glucagon-like peptide-1 (GLP-1)-based therapies carry special cardiovascular implications, exerting both direct and indirect effects. The control of vascular permeability is of pivotal importance in vascular pathologies. The objective of the present study was to determine the effect of GLP-1 on endothelial barrier function and assess the underlying mechanism(s). Here we show for the first time that the stable GLP-1 analog exendin-4 attenuated the leakage of subcutaneous blood vessels in mice indexed by dye extravasation caused by injections of thrombin. Moreover, in cultured endothelial cells, exendin-4 significantly prevented the thrombin-induced FITC-dextran permeability of endothelial monolayers via GLP-1 receptor. Immunofluorescence microscopy reveals that exendin-4 abrogates detrimental effects of thrombin on VE-cadherin and the F-actin cytoskeleton, with decreased stress fiber and gap formation. Importantly, exendin-4 reduced thrombin-induced tyrosine phosphorylation of VE-cadherin at Y731 and Y658. Moreover, small GTPase Rac1 was significantly activated as a result of exendin-4 treatment. The efficacy of exendin-4 to counteract the barrier-compromising effect of thrombin was blunted when Rac1 was inactivated by Rac1 inhibitor NSC-23766. Inhibition of PKA activity or small-interfering RNA for exchange protein directly activated by cAMP 1 (Epac1) decreased exendin-4-induced Rac1 activation and barrier enhancement, indicating the participation of both PKA and Epac1 in the barrier-stabilizing effect of exendin-4 elicited on thrombin-impaired barrier function. Thus, our findings have uncovered an unpredicted role for exendin-4 in the coordination of vascular permeability and clarified the molecular underpinnings that contribute to barrier restoration initiated by exendin-4.
Insights
Glucagon-like peptide-1 (GLP-1) analog exendin-4 stabilizes blood vessels by preventing leakage and restoring endothelial barrier function. This action involves the activation of Rac1, PKA, and Epac1 pathways, counteracting thrombin
Area of Science:
- Vascular Biology
- Endocrinology
- Pharmacology
Background:
- Glucagon-like peptide-1 (GLP-1)-based therapies are emerging antidiabetic agents with cardiovascular implications.
- Vascular permeability control is crucial for managing vascular pathologies.
Purpose of the Study:
- To investigate the effect of GLP-1 on endothelial barrier function.
- To elucidate the underlying molecular mechanisms of GLP-1's action on vascular permeability.
Main Methods:
- In vivo studies using exendin-4 to assess subcutaneous blood vessel leakage in mice.
- In vitro experiments with cultured endothelial cells to evaluate exendin-4's effect on thrombin-induced permeability.
- Immunofluorescence microscopy to analyze VE-cadherin and F-actin cytoskeleton.
- Assessment of tyrosine phosphorylation, Rac1 activation, and involvement of PKA and Epac1 pathways.
Main Results:
- Exendin-4 attenuated thrombin-induced vascular leakage in mice.
- Exendin-4 prevented thrombin-induced endothelial monolayer permeability via the GLP-1 receptor.
- Exendin-4 preserved VE-cadherin and F-actin cytoskeleton integrity, reducing stress fibers and gaps.
- Exendin-4 inhibited thrombin-induced VE-cadherin tyrosine phosphorylation and activated Rac1.
- Rac1 inhibition blunted exendin-4's barrier-protective effect.
- PKA and Epac1 pathways are involved in exendin-4-mediated Rac1 activation and barrier enhancement.
Conclusions:
- Exendin-4 demonstrates a significant role in regulating vascular permeability.
- Exendin-4 restores endothelial barrier function by stabilizing VE-cadherin and cytoskeleton.
- The mechanism involves GLP-1 receptor, PKA, Epac1, and Rac1 activation, offering a novel therapeutic insight.
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