Related Experiment Videos
Enhanced endothelin activity prevents vasodilation to insulin in insulin resistance
Allison W Miller1, Christina Tulbert, Michelle Puskar
1Department of Physiology and Pharmacology, Wake Forest University School of Medicine, Winston-Salem, NC 27157, USA. amiller@wfubmc.edu
Abstract:
Although insulin-mediated vasodilation is impaired in insulin resistance, the mechanisms of this are unknown. We investigated factors mediating vasoactive responses to insulin in control and insulin-resistant rats. Responses to insulin in small mesenteric arteries from control and insulin-resistant rats were investigated after blocking endothelin-A receptors, cyclooxygenase, nitric oxide synthase, and potassium channels. In addition, insulin's effect on prostacyclin production in small mesenteric blood vessels was assessed by enzyme immunoassay. Insulin induced a concentration-dependent vasodilation in control arteries that was absent in arteries from insulin-resistant rats. However, in the presence of BQ610, an endothelin-A receptor antagonist, the response to insulin was normalized in insulin-resistant arteries. In control arteries, insulin-induced vasodilation was completely inhibited by indomethacin, meclofenamate, glibenclamide, or potassium chloride. In contrast, neither n-nitro-L-arginine nor the combination of charybdotoxin and apamin altered vasodilation to insulin. In insulin-resistant arteries in the presence of BQ610, vasodilation was also inhibited by indomethacin, glibenclamide, and potassium chloride. Insulin increased prostacyclin production in small mesenteric blood vessels from both groups of rats to a similar degree. Insulin-induced vasodilation in small rat mesenteric arteries is mediated through prostacyclin- and ATP-dependent potassium channels. However, insulin-resistant arteries do not vasodilate to insulin unless endothelin-A receptors are blocked. Thus, impaired relaxation to insulin in insulin-resistant rats is due to enhanced vasoconstriction by endothelin, which offsets a normal vasodilatory response to insulin.
Insights
Insulin resistance impairs blood vessel relaxation due to increased endothelin vasoconstriction. Blocking endothelin-A receptors restores insulin
Area of Science:
- Vascular Physiology
- Endocrinology
- Cardiovascular Research
Background:
- Insulin resistance is linked to impaired insulin-mediated vasodilation.
- The precise mechanisms behind this vascular dysfunction remain unclear.
- Understanding these mechanisms is crucial for addressing cardiovascular complications in insulin resistance.
Purpose of the Study:
- To investigate the factors mediating vasoactive responses to insulin in control versus insulin-resistant rats.
- To elucidate the role of endothelin and other signaling pathways in insulin-induced vasodilation.
- To identify potential therapeutic targets for improving vascular function in insulin resistance.
Main Methods:
- Examined responses to insulin in small mesenteric arteries from control and insulin-resistant rats.
- Utilized receptor antagonists (endothelin-A), enzyme inhibitors (cyclooxygenase, nitric oxide synthase), and channel blockers (potassium channels).
- Assessed prostacyclin production via enzyme immunoassay.
Main Results:
- Insulin induced vasodilation in control arteries but not in insulin-resistant arteries.
- Blocking endothelin-A receptors normalized insulin's vasodilatory response in insulin-resistant arteries.
- Insulin-induced vasodilation in control arteries involved prostacyclin and ATP-dependent potassium channels.
- Prostacyclin production was similar in both groups; nitric oxide pathways were not involved.
Conclusions:
- Impaired insulin-induced vasodilation in insulin resistance is primarily due to enhanced endothelin-mediated vasoconstriction.
- Endothelin's action offsets the normal vasodilatory capacity of insulin.
- Targeting endothelin receptors may restore vascular function in insulin resistance.