Cardiac myocytes control release of endothelin-1 in coronary vasculature

Daphne Merkus1, Anna K Brzezinska, Cuihua Zhang

  • 1Experimental Cardiology, Thoraxcenter, Erasmus MC, University Medical Center Rotterdam, Rotterdam, The Netherlands. d.merkus@erasmusmc.nl

Insights

Alpha-adrenergic stimulation causes cardiac myocytes to release a factor, likely angiotensin II, that prompts coronary vessels to produce endothelin, a vasoconstrictor. This mechanism may protect the heart by balancing blood flow.

Area of Science:

  • Cardiovascular Physiology
  • Endocrinology
  • Pharmacology

Background:

  • Alpha-adrenergic vasoconstriction in coronary circulation involves alpha-adrenoceptors on cardiac myocytes and endothelin release.
  • Adult cardiac myocytes do not express the preproendothelin gene, suggesting an indirect mechanism.

Purpose of the Study:

  • To investigate if alpha-adrenoceptor stimulation of cardiac myocytes releases an endothelin-releasing factor.
  • To determine if this factor stimulates coronary vasculature to produce endothelin.

Main Methods:

  • Used an in vitro model with isolated adult rat cardiac myocytes and coronary arterioles.
  • Stimulated myocytes with phenylephrine (alpha-adrenoceptor agonist).
  • Assessed vasoactive responses of myocyte bathing fluid transferred to arterioles, using endothelin-converting enzyme inhibitor (phosphoramidon) and receptor antagonists.

Main Results:

  • Phenylephrine-treated myocyte bathing fluid caused vasoconstriction in arterioles.
  • Phosphoramidon added to arterioles, but not myocytes, converted vasoconstriction to vasodilation, indicating vascular endothelin production.
  • Angiotensin type 1 receptor antagonist (losartan) enhanced vasodilation, suggesting angiotensin II involvement.

Conclusions:

  • Alpha-adrenergic activation of cardiac myocytes releases a factor, likely angiotensin II.
  • This factor stimulates coronary vasculature to produce endothelin.
  • This pathway may integrate neuronal signals with myocardial metabolism to regulate coronary blood flow.

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