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Published on: March 22, 2012
Signaling assemblies formed in mast cells activated via Fcepsilon receptor I dimers
Lubica Dráberová1, Pavel Lebduska, Ivana Hálová
1Department of Signal Transduction, Institute of Molecular Genetics, Academy of Sciences of the Czech Republic, Videnská 1083, CZ 142-20 Prague 4, Czech Republic.
Insights
Mast cell activation by Fc epsilon RI dimers, not large aggregates, leads to sustained calcium signals and degranulation. This suggests signaling originates from small Fc epsilon RI domains.
Area of Science:
- Immunology
- Cell Biology
Background:
- Fc epsilon RI aggregation is crucial for mast cell activation by antigens.
- The precise relationship between Fc epsilon RI aggregation extent and downstream signaling is not fully understood.
Purpose of the Study:
- To investigate mast cell activation events triggered by Fc epsilon RI dimers compared to larger aggregates.
- To elucidate the biochemical and topographical differences in signaling pathways.
Main Methods:
- Utilized rat basophilic leukemia cells and anti-Fc epsilon RI mAb for controlled Fc epsilon RI aggregation.
- Employed immunogold electron microscopy to analyze receptor and signaling molecule clustering.
- Monitored tyrosine phosphorylation, signaling molecule recruitment, and intracellular calcium levels.
Main Results:
- Fc epsilon RI dimers induced slower, sustained calcium increases and degranulation.
- Dimers showed less association with detergent-resistant membranes and delayed signaling molecule recruitment.
- Large Fc epsilon RI aggregates promoted rapid signaling termination, unlike dimers.
- Immunoelectron microscopy revealed distinct topographical differences in signaling domains.
Conclusions:
- Mast cell signaling originates from small domains formed by dimerized/oligomerized Fc epsilon RI.
- Large Fc epsilon RI aggregates facilitate strong initial triggering but rapid signal termination.
- The extent of Fc epsilon RI aggregation critically influences mast cell activation dynamics.
Abstract:
Although aggregation of the Fcepsilon receptor I (FcepsilonRI) is necessary for Ag-mediated mast cell triggering, the relationship between the extent of the FcepsilonRI aggregation and subsequent biochemical and topographical events is incompletely understood. In this study, we analyzed the activation events induced by FcepsilonRI dimers, elicited by binding of anti-FcepsilonRI mAb to rat basophilic leukemia cells. We found that, in contrast to extensively aggregated FcepsilonRI, receptor dimers (1) induced a less extensive association of FcepsilonRI with detergent-resistant membranes, (2) delayed the tyrosine phosphorylation and membrane recruitment of several signaling molecules, (3) triggered a slower but more sustained increase in concentration of free cytoplasmic calcium, (4) induced degranulation which was not inhibited at higher concentrations of the cross-linking mAb, and (5) failed to produce clusters of FcepsilonRI, Syk kinase and Grb2 adapter in osmiophilic membranes, as detected by immunogold electron microscopy on membrane sheets. Despite striking differences in the topography of FcepsilonRI dimers and multimers, biochemical differences were less pronounced. The combined data suggest that FcepsilonRI-activated mast cells propagate signals from small signaling domains formed around dimerized/oligomerized FcepsilonRI; formation of large FcepsilonRI aggregates in osmiophilic membranes seems to promote both strong receptor triggering and rapid termination of the signaling responses.
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