Effect of chronic endothelin receptor antagonism on cerebrovascular function in type 2 diabetes

Alex K Harris1, Mostafa M Elgebaly, Weiguo Li

  • 1Program in Clinical and Experimental Therapeutics, University of Georgia College of Pharmacy, Augusta, Georgia, USA.

Insights

Type 2 diabetes impairs cerebral blood flow regulation. Blocking endothelin-A (ETA) receptors improved vascular function in diabetic rats, while blocking ETB receptors worsened it, highlighting receptor balance importance.

Area of Science:

  • Neuroscience
  • Vascular Biology
  • Endocrinology

Background:

  • Diabetes mellitus, particularly Type 2, is a major risk factor for stroke.
  • Cerebrovascular dysfunction and altered myogenic tone are implicated in diabetes-related stroke.
  • The role of endothelin-1 (ET-1) and its receptors in Type 2 diabetes cerebrovascular complications is not well understood.

Purpose of the Study:

  • To investigate cerebrovascular dysfunction in the Goto-Kakizaki (GK) rat model of Type 2 diabetes.
  • To determine the effects of endothelin receptor A (ETA) and endothelin receptor B (ETB) antagonism on cerebrovascular function.

Main Methods:

  • GK rats and control rats were treated with ETA receptor antagonist (atrasentan) or ETB receptor antagonist (A-192621) for 4 weeks.
  • Vascular function of basilar arteries was assessed using wire myography.
  • Sensitivity to ET-1 and endothelium-dependent relaxation were evaluated.

Main Results:

  • GK rats showed increased sensitivity to ET-1 and impaired endothelium-dependent relaxation.
  • ETA receptor antagonism normalized vascular function in GK rats but increased ET-1 sensitivity in controls.
  • ETB receptor blockade at a higher dose caused paradoxical constriction in diabetic rats.

Conclusions:

  • Cerebrovascular dysfunction, including altered myogenic tone, occurs in Type 2 diabetes.
  • ETA receptor antagonism ameliorates diabetes-induced cerebrovascular dysfunction.
  • ETB receptors have differential effects, and the balance of ETA/ETB receptor activity is crucial in diabetic cerebrovascular complications.

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