Mast cell degranulation mediates bronchoconstriction via serotonin and not via renin release

Manne Krop1, Zeynep G Ozünal, Wenxia Chai

  • 1Division of Vascular Medicine and Pharmacology, Department of Internal Medicine, Erasmus MC, Rotterdam, The Netherlands.

Insights

Mast cell degranulation causes bronchoconstriction primarily through serotonin release, not renin-angiotensin system activation. This finding challenges previous concepts regarding mast cell mediators in airway smooth muscle contraction.

Area of Science:

  • Pharmacology
  • Respiratory Physiology

Background:

  • Mast cells are implicated in airway inflammation and bronchoconstriction.
  • The role of mast cell-derived renin in angiotensin II-induced bronchoconstriction is under investigation.

Purpose of the Study:

  • To investigate the role of mast cell degranulation in rat bronchial smooth muscle contraction.
  • To determine if mast cell-derived renin contributes to angiotensin II-mediated bronchoconstriction.

Main Methods:

  • Bronchial rings from Sprague-Dawley rats were mounted in myographs.
  • Responses to mast cell degranulator (compound 48/80), angiotensins, bradykinin, and serotonin were assessed with and without various inhibitors.

Main Results:

  • Compound 48/80-induced contraction was abolished by ketanserin (5-HT2A/2C antagonist) and reduced by cromolyn (mast cell stabilizer).
  • Renin inhibitors, ACE inhibitors, AT1 receptor blockers, and alpha1-adrenoceptor antagonists did not affect compound 48/80-induced contraction.
  • Angiotensin I and II induced contraction, inhibited by captopril and irbesartan, respectively.
  • Serotonin induced contraction, blocked by ketanserin.
  • Renin and angiotensinogen were undetectable in bronchial tissue, while serotonin was present.

Conclusions:

  • Mast cell degranulation leads to serotonin-mediated bronchoconstriction.
  • The renin-angiotensin system is unlikely to be involved in mast cell-mediated bronchoconstriction in this model.

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