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Isolation of Peritoneum-derived Mast Cells and Their Functional Characterization with Ca2+-imaging and Degranulation Assays
Published on: July 4, 2018
Neuronal substance P-driven MRGPRX2-dependent mast cell degranulation products differentially promote vascular
Masakazu Nagamine1,2, Ayako Kaitani2, Kumi Izawa2
1Department of Science of Allergy and Inflammation, Juntendo University Graduate School of Medicine, Tokyo, Japan.
Abstract:
Mas-related G protein-coupled receptor b2 (Mrgprb2) binding to its cationic endogenous and exogenous ligands induces mast cell degranulation and promotes inflammation in mice. However, the physiological roles of its human homologue MRGPRX2 remain unclear. Here we aimed to elucidate the mechanisms by which MRGPRX2 regulates vascular permeability, and generated MRGPRX2 knock-in (MRGPRX2-KI) and Mrgprb2 knockout (Mrgprb2-KO) mice. Substance P (SP) and ciprofloxacin strongly degranulated MRGPRX2-KI peritoneal mast cells (PMCs) better than WT PMCs, whereas Dermatophagoides pteronyssinus (Der p) extract and phenol-soluble modulin α3 (PSMα3) did not degranulate PMCs. SP-stimulated MRGPRX2-KI PMCs released large amounts of histamine and mast cell protease 4 (MCPT4) chymase. Der p extract, PSMα3, and MCPT4, but not histamine, induced SP release from dorsal root ganglion (DRG) cells. However, this effect of Der p extract/PSMα3 was suppressed by a transient receptor potential vanilloid 1 (TRPV1) antagonist. SP-, ciprofloxacin-, Der p extract-, PSMα3-, and MCPT4-induced vascular permeability was highest in MRGPRX2-KI mice, which depended on SP. In addition, SP-, ciprofloxacin- and PSMα3-induced MRGPRX2-dependent vascular hyperpermeability was suppressed by antihistamine and chymase inhibitor. TRPV1 antagonist also inhibited PSMα3-induced MRGPRX2-dependent vascular hyperpermeability. Both Mrgprb2-KO and MRGPRX2-KI did not influence the histamine-induced murine vascular hyperpermeability. Overall, our results suggest that neuronal SP induces MRGPRX2-dependent mast cell degranulation, releasing histamine and chymase, which promote vascular hyperpermeability directly or indirectly via DRG cell activation. Importantly, the worsening cycle (MRGPRX2 → mast cell degranulation → chymase → DRG activation → SP → MRGPRX2) seems to play an important role in human MRGPRX2-depdendent inflammation.
Insights
Human MRGPRX2 activation by neuronal substance P triggers mast cell degranulation, releasing histamine and chymase. This process increases vascular permeability, potentially driving inflammation through a self-perpetuating cycle.
Area of Science:
- Immunology
- Dermatology
- Neuroscience
Background:
- Mas-related G protein-coupled receptor b2 (Mrgprb2) in mice mediates mast cell degranulation and inflammation.
- The physiological function of its human homologue, MRGPRX2, remains largely unknown.
- Understanding MRGPRX2's role is crucial for elucidating human inflammatory responses.
Purpose of the Study:
- To investigate the mechanisms by which MRGPRX2 regulates vascular permeability.
- To generate and characterize MRGPRX2 knock-in (MRGPRX2-KI) and Mrgprb2 knockout (Mrgprb2-KO) mouse models.
Main Methods:
- Utilized MRGPRX2-KI and Mrgprb2-KO mice to study mast cell degranulation and vascular permeability.
- Stimulated peritoneal mast cells (PMCs) with various ligands including Substance P (SP), ciprofloxacin, Dermatophagoides pteronyssinus (Der p) extract, and phenol-soluble modulin α3 (PSMα3).
- Measured histamine and chymase release, dorsal root ganglion (DRG) cell activation, and vascular permeability changes.
Main Results:
- MRGPRX2-KI PMCs showed enhanced degranulation with SP and ciprofloxacin, releasing histamine and chymase.
- SP, ciprofloxacin, Der p extract, PSMα3, and chymase induced vascular hyperpermeability in MRGPRX2-KI mice, dependent on SP.
- A positive feedback loop involving MRGPRX2, mast cells, chymase, DRG activation, and SP was identified as critical for inflammation.
Conclusions:
- Neuronal SP triggers MRGPRX2-dependent mast cell degranulation, leading to histamine and chymase release.
- These mediators promote vascular hyperpermeability directly or indirectly via DRG cell activation.
- The identified MRGPRX2-mediated inflammatory cycle is significant in human conditions.
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