Conformations of IgE bound to its receptor Fc epsilon RI and in solution

Y Zheng1, B Shopes, D Holowka

  • 1Department of Chemistry, Cornell University, Ithaca, New York 14853.

Biochemistry
|September 24, 1991
PubMed

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.

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