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Updated: Aug 8, 2026

Bimolecular Fluorescence Complementation
Published on: April 15, 2011
Visualization of negative signaling in B cells by quantitative confocal microscopy
H Phee1, W Rodgers, K M Coggeshall
1Immunobiology and Cancer Program, The Oklahoma Medical Research Foundation, 825 N.E. 13th St., Oklahoma City, OK 73104, USA.
Insights
The B-cell antigen receptor (BCR) and Fc receptor for IgG (FcgammaRII) cocluster, recruiting SHIP to block B-cell activation. This SHIP recruitment prevents Rac activation and actin polymerization, inhibiting BCR internalization.
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- A proposed model suggests B-cell antigen receptor (BCR) and Fc receptor for IgG (FcgammaRII) coclustering inhibits B-cell activation.
- This dominant-negative signaling is hypothesized to involve FcgammaRII-mediated recruitment of SH2 domain-containing inositol 5'-phosphatase (SHIP).
Purpose of the Study:
- To experimentally test the model of BCR-FcgammaRII coclustering and SHIP recruitment blocking B-cell activation.
- To elucidate the roles of FcgammaRII and SHIP in the spatial regulation of B-cell signaling pathways.
Main Methods:
- Quantitative confocal microscopy was employed on ex vivo splenic B cells.
- Analysis of protein and lipid raft colocalization with the BCR under various genetic conditions (FcgammaRII-/-, gamma chain-/-, SHIP-/-).
Main Results:
- FcgammaRII and BCR colocalization was confirmed, with SHIP recruitment dependent on FcgammaRII.
- SHIP recruitment inhibited the colocalization of BCR with Btk, Vav, Rac, and F-actin, indicating impaired downstream signaling.
- SHIP-dependent hydrolysis of PtdIns-3,4,5-trisphosphate was identified as the mechanism preventing Rac activation, actin polymerization, and BCR internalization.
Conclusions:
- SHIP recruitment to the coclustered BCR-FcgammaRII complex is crucial for inhibiting B-cell activation.
- SHIP's enzymatic activity disrupts the spatial organization of key signaling molecules, including those regulating actin dynamics and receptor internalization.
- The findings provide a mechanistic explanation for how FcgammaRII signaling suppresses BCR-induced B-cell activation.
Abstract:
Numerous biochemical experiments have invoked a model in which B-cell antigen receptor (BCR)-Fc receptor for immunoglobulin (Ig) G (FcgammaRII) coclustering provides a dominant negative signal that blocks B-cell activation. Here, we tested this model using quantitative confocal microscopic techniques applied to ex vivo splenic B cells. We found that FcgammaRII and BCR colocalized with intact anti-Ig and that the SH2 domain-containing inositol 5'-phosphatase (SHIP) was recruited to the same site. Colocalization of BCR and SHIP was inefficient in FcgammaRII-/- but not gamma chain-/- splenic B cells. We also examined the subcellular location of a variety of enzymes and adapter proteins involved in signal transduction. Several proteins (CD19, CD22, SHP-1, and Dok) and a lipid raft marker were co-recruited to the BCR, regardless of the presence or absence of FcgammaRII and SHIP. Other proteins (Btk, Vav, Rac, and F-actin) displayed reduced colocalization with BCR in the presence of FcgammaRII and SHIP. Colocalization of BCR and F-actin required phosphatidylinositol (PtdIns) 3-kinase and was inhibited by SHIP, because the block in BCR/F-actin colocalization was not seen in B cells of SHIP-/- animals. Furthermore, BCR internalization was inhibited with intact anti-Ig stimulation or by expression of a dominant-negative mutant form of Rac. From these results, we propose that SHIP recruitment to BCR/FcgammaRII and the resulting hydrolysis of PtdIns-3,4,5-trisphosphate prevents the appropriate spatial redistribution and activation of enzymes distal to PtdIns 3-kinase, including those that promote Rac activation, actin polymerization, and receptor internalization.
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