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.
Abstract