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Isolation and Characterization Of Chimeric Human Fc-expressing Proteins Using Protein A Membrane Adsorbers And A Streamlined Workflow
Published on: January 8, 2014
Conformations of IgE bound to its receptor Fc epsilon RI and in solution
Insights
Murine immunoglobulin E (IgE) exhibits a bent conformation when bound to its receptor (Fc epsilon RI), confirmed by resonance energy transfer studies on a modified IgE. This bent structure is observed both on the cell membrane and in solution.
Area of Science:
- Immunology
- Structural Biology
- Biochemistry
Background:
- Previous studies suggested a bent conformation of immunoglobulin E (IgE) when bound to its high-affinity receptor (Fc epsilon RI).
- Understanding IgE conformation is crucial for deciphering its role in allergic responses and immune signaling.
Purpose of the Study:
- To further investigate the conformational states of IgE, both when bound to Fc epsilon RI and in solution.
- To provide a detailed structural description of IgE bound to its receptor.
Main Methods:
- A mutant recombinant IgE (epsilon/C gamma 3*) with a cysteine substitution was engineered for specific labeling.
- Sulfhydryl groups were labeled with fluorescein-5-maleimide (FM-epsilon/C gamma 3*), and antigen-binding sites were labeled with a DNS group.
- Resonance energy transfer (RET) experiments were conducted on receptor-bound and solution-state IgE.
Main Results:
- RET experiments on receptor-bound FM-epsilon/C gamma 3* revealed a distance of 53 Å between the Fc C-terminus and membrane probes.
- The distance between the Fc C-terminus and Fab antigen-binding sites (eosin-DNS) was determined to be 69 Å for receptor-bound IgE.
- In solution, the distance between these probes in FM-epsilon/C gamma 3* was approximately 71 Å.
Conclusions:
- The results confirm a bent geometry of IgE when bound to Fc epsilon RI on the cell membrane.
- The study provides unprecedented detail on the structural conformation of IgE in both bound and solution states.
- The engineered IgE and labeling strategy offer a valuable tool for future structural and functional studies of IgE.
Abstract:
Previous resonance energy transfer studies suggested that murine immunoglobulin E (IgE) is bent near the junction of its Fc and Fab segments when bound to its high-affinity receptor (Fc epsilon RI) on RBL cells. To examine further the conformations of IgE, both bound to this receptor and in solution, a mutant recombinant IgE (epsilon/C gamma 3*) was prepared that has a cysteine replacing a serine near the C-terminal ends of the heavy chain. The introduced cysteine residues provide a means for specific modification of IgE, and the sulfhydryl groups were selectively labeled with fluorescein-5-maleimide (FM-epsilon/C gamma 3*). This IgE also binds a 5-(dimethylamino)naphthalene-1-sulfonyl (DNS) group in the antigen-binding sites. Resonance energy transfer experiments carried out on receptor-bound FM-epsilon/C gamma 3* yielded a distance of 53 A between fluorescein near the C-terminal end of the Fc segment and amphipathic acceptor probes at the membrane surface. The average distance between this C-terminal fluorescein and acceptor eosin-DNS in the antigen-binding sites at the N-terminal ends of the Fab segments was found to be 69 A. These results combine with those from previous structural studies to provide an unprecedented detailed description of the bent geometry of IgE bound to its receptor on the membrane. Energy transfer measured for FM-epsilon/C gamma 3* in solution between fluorescein near the C-terminal end of the Fc segment and eosin-DNS at the N-terminal ends of the Fab segments indicates that the average distance between these probes is about 71 A.(ABSTRACT TRUNCATED AT 250 WORDS)
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