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Updated: Dec 31, 2025

Isolation of Peritoneum-derived Mast Cells and Their Functional Characterization with Ca2+-imaging and Degranulation Assays
Published on: July 4, 2018
Stabilization of Perivascular Mast Cells by Endothelial CNP (C-Type Natriuretic Peptide)
Wen Chen1,2, Franziska Werner1, Anja Illerhaus3
1From the Institute of Physiology, University of Würzburg, Germany (W.C., F.W., K.V., T.P., M.K.).
Insights
C-type natriuretic peptide (CNP) stabilizes mast cells (MCs) via guanylyl cyclase-B signaling. This prevents excessive MC degranulation and maintains vascular integrity during cardiovascular disease.
Area of Science:
- Cardiovascular Biology
- Immunology
- Vascular Physiology
Background:
- Perivascular mast cells (MCs) are implicated in cardiovascular diseases.
- Physiological regulators of mast cell degranulation are poorly understood.
- Endothelial C-type natriuretic peptide (CNP) is known to maintain vascular integrity, but its targets and mechanisms remain unclear.
Purpose of the Study:
- To investigate whether CNP regulates mast cells.
- To determine the role of CNP signaling in mast cell activation and vascular barrier function.
Main Methods:
- In vitro studies using cultured human and murine mast cells.
- In vivo studies using genetically modified mice lacking guanylyl cyclase-B (GC-B) in mast cells (MC GC-B knockout).
- Assessment of mast cell degranulation, macromolecule extravasation, and inflammatory responses in various disease models (ischemia-reperfusion, coronary occlusion, deep vein thrombosis).
Main Results:
- CNP activated GC-B receptor and cyclic GMP signaling in mast cells, inhibiting degranulation.
- MC GC-B knockout mice exhibited increased spontaneous mast cell degranulation and elevated plasma chymase.
- CNP treatment prevented mast cell activation and endothelial barrier disruption in control mice but not in MC GC-B knockout mice.
- MC GC-B knockout mice showed exacerbated myocardial infarction, increased neutrophil infiltration, and enhanced deep vein thrombosis.
Conclusions:
- CNP, through GC-B/cyclic GMP signaling, stabilizes perivascular mast cells.
- CNP prevents mast cell hyperactivation under pathological conditions, thereby maintaining vascular integrity.
- This pathway is crucial for regulating vascular homeostasis in both physiological and disease states.
Objective:
Activated perivascular mast cells (MCs) participate in different cardiovascular diseases. Many factors provoking MC degranulation have been described, while physiological counterregulators are barely known. Endothelial CNP (C-type natriuretic peptide) participates in the maintenance of vascular barrier integrity, but the target cells and mechanisms are unclear. Here, we studied whether MCs are regulated by CNP. Approach and Results: In cultured human and murine MCs, CNP activated its specific GC (guanylyl cyclase)-B receptor and cyclic GMP signaling. This enhanced cyclic GMP-dependent phosphorylation of the cytoskeleton-associated VASP (vasodilator-stimulated phosphoprotein) and inhibited ATP-evoked degranulation. To elucidate the relevance in vivo, mice with a floxed GC-B (Npr2) gene were interbred with a Mcpt5-Cre line to generate mice lacking GC-B in connective tissue MCs (MC GC-B knockout). In anesthetized mice, acute ischemia-reperfusion of the cremaster muscle microcirculation provoked extensive MC degranulation and macromolecule extravasation. Superfusion of CNP markedly prevented MC activation and endothelial barrier disruption in control but not in MC GC-B knockout mice. Notably, already under resting conditions, such knockout mice had increased numbers of degranulated MCs in different tissues, together with elevated plasma chymase levels. After transient coronary occlusion, their myocardial areas at risk and with infarction were enlarged. Moreover, MC GC-B knockout mice showed augmented perivascular neutrophil infiltration and deep vein thrombosis in a model of inferior vena cava ligation.
Conclusions:
CNP, via GC-B/cyclic GMP signaling, stabilizes resident perivascular MCs at baseline and prevents their excessive activation under pathological conditions. Thereby CNP contributes to the maintenance of vascular integrity in physiology and disease.
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