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Updated: Jun 13, 2026

Isolation of Peritoneum-derived Mast Cells and Their Functional Characterization with Ca2+-imaging and Degranulation Assays
Published on: July 4, 2018
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.
Abstract:
To verify the recently proposed concept that mast cell-derived renin facilitates angiotensin II-induced bronchoconstriction bronchial rings from male Sprague-Dawley rats were mounted in Mulvany myographs, and exposed to the mast cell degranulator compound 48/80 (300 microg/ml), angiotensin I, angiotensin II, bradykinin or serotonin (5-hydroxytryptamine, 5-HT), in the absence or presence of the renin inhibitor aliskiren (10 micromol/l), the ACE inhibitor captopril (10 micromol/l), the angiotensin II type 1 (AT1) receptor blocker irbesartan (1 micromol/l), the mast cell stabilizer cromolyn (0.3 mmol/l), the 5-HT2A/2C receptor antagonist ketanserin (0.1 micromol/l) or the alpha1-adrenoceptor antagonist phentolamine (1 micromol/l). Bath fluid was collected to verify angiotensin generation. Bronchial tissue was homogenized to determine renin, angiotensinogen and serotonin content. Compound 48/80 contracted bronchi to 24+/-4% of the KCl-induced contraction. Ketanserin fully abolished this effect, while cromolyn reduced the contraction to 16+/-5%. Aliskiren, captopril, irbesartan and phentolamine did not affect this response, and the angiotensin I and II levels in the bath fluid after 48/80 exposure were below the detection limit. Angiotensin I and II equipotently contracted bronchi. Captopril shifted the angiotensin I curve approximately 10-fold to the right, whereas irbesartan fully blocked the effect of angiotensin II. Bradykinin-induced constriction was shifted approximately 100-fold to the left with captopril. Serotonin contracted bronchi, and ketanserin fully blocked this effect. Finally, bronchial tissue contained serotonin at micromolar levels, whereas renin and angiotensinogen were undetectable in this preparation. In conclusion, mast cell degranulation results in serotonin-induced bronchoconstriction, and is unlikely to involve renin-induced angiotensin generation.
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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