Myocardial adenyl cyclase: activation by thyroid hormones and evidence for two adenyl cyclase systems

Insights

Thyroid hormones directly activate heart adenyl cyclase, independent of the adrenergic system. This finding suggests a novel mechanism contributing to hyperthyroidism's cardiac effects.

Area of Science:

  • Cardiology
  • Endocrinology
  • Molecular Biology

Background:

  • The hyperdynamic circulatory state in hyperthyroidism is not fully understood.
  • Cardiac effects of hyperthyroidism resemble excessive adrenergic stimulation.
  • Thyroid hormones may influence the heart independently of the adrenergic system.

Purpose of the Study:

  • To investigate if thyroid hormones (thyroxine and triiodothyronine) can activate myocardial adenyl cyclase.
  • To determine if this activation is mediated by the adrenergic system.

Main Methods:

  • Assayed adenyl cyclase activity in particulate fractions of cat heart homogenates.
  • Measured the conversion of ATP-(32)P to cyclic 3',5'-AMP-(32)P in the presence of thyroid hormones.
  • Tested the effects of various related compounds and propranolol (a beta-adrenergic blocker).

Main Results:

  • L-thyroxine and L-triiodothyronine significantly increased adenyl cyclase activity.
  • Structurally related compounds without thyromimetic activity did not activate adenyl cyclase.
  • Propranolol blocked norepinephrine-induced activation but not thyroxine-induced activation.
  • Thyroxine and norepinephrine showed additive effects on cyclic 3',5'-AMP production.

Conclusions:

  • Thyroid hormone directly activates myocardial adenyl cyclase in vitro.
  • This activation is independent of beta-adrenergic receptors.
  • Findings suggest separate adenyl cyclase systems for norepinephrine and thyroid hormone in the heart.
  • Direct thyroid hormone activation of myocardial adenyl cyclase may contribute to hyperthyroid cardiac symptoms.

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