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Characterization of Glycoproteins with the Immunoglobulin Fold by X-Ray Crystallography and Biophysical Techniques
Published on: July 5, 2018
The solution structure of the unbound IgG Fc receptor CD64 resembles its crystal structure: Implications for function
Gar Kay Hui1, Xin Gao1, Jayesh Gor1
1Department of Structural and Molecular Biology, Darwin Building, University College London, London, United Kingdom.
Insights
Researchers determined the solution structure of Fc gamma receptor I (FcγRI or CD64), revealing domain flexibility. This finding is crucial for understanding immune responses and developing new therapeutic strategies targeting CD64.
Area of Science:
- Immunology
- Structural Biology
- Biophysics
Background:
- Fc gamma receptor I (FcγRI or CD64) is a high-affinity receptor crucial for immune responses, expressed on various immune cells.
- CD64 mediates key cellular functions through binding immunoglobulin G (IgG) antibody-antigen complexes.
- The solution structure of CD64, essential for understanding its function, remained unknown.
Purpose of the Study:
- To determine the three-dimensional solution structure of Fc gamma receptor I (CD64).
- To investigate the structural flexibility and domain organization of CD64.
- To assess the compatibility of the CD64 solution structure with IgG binding.
Main Methods:
- Analytical ultracentrifugation to assess monomeric/dimeric states and sedimentation properties.
- Small-angle X-ray scattering (SAXS) to determine radius of gyration and low-concentration dimerization.
- Atomistic modeling using Monte Carlo simulations (SASSIE-web) to generate and fit structural models.
Main Results:
- CD64 exists primarily as a monomer in solution, with evidence of low-level dimerization at higher concentrations.
- SAXS data indicated a radius of gyration (RG) of 3.3-3.4 nm.
- Modeled structures revealed domain flexibility between the D1, D2, and D3 extracellular domains, consistent with crystal structures but showing new insights.
- The determined solution structure is compact enough to allow steric accessibility for IgG binding.
Conclusions:
- The study provides the first solution structure of Fc gamma receptor I (CD64), highlighting domain flexibility.
- The structural insights confirm CD64's ability to bind IgG, crucial for immune cell activation.
- This work may inform novel therapeutic strategies targeting CD64 and facilitate studies of the CD64-IgG complex.
Abstract:
FcγRI (CD64) is the only high-affinity Fcγ receptor found on monocytes, macrophages, eosinophils, neutrophils and dendritic cells. It binds immunoglobulin G (IgG) antibody-antigen complexes at its Fc region to trigger key immune responses. CD64 contains three immunoglobulin-fold extracellular domains (D1, D2 and D3) and a membrane-spanning region. Despite the importance of CD64, no solution structure for this is known to date. To investigate this, we used analytical ultracentrifugation, small-angle X-ray scattering, and atomistic modelling. Analytical ultracentrifugation revealed that CD64 was monomeric with a sedimentation coefficient s020,w of 2.53 S, together with some dimer. Small-angle X-ray scattering showed that its radius of gyration RG was 3.3-3.4 nm and increased at higher concentrations to indicate low dimerization. Monte Carlo modelling implemented in the SASSIE-web package generated 279,162 physically-realistic trial CD64 structures. From these, the scattering best-fit models at the lowest measured concentrations that minimised dimers revealed that the D1, D2 and D3 domains were structurally similar to those seen in three CD64 crystal structures, but showed previously unreported flexibility between D1, D2 and D3. Despite the limitations of the scattering data, the superimposition of the CD64 solution structures onto crystal structures of the IgG Fc-CD64 complex showed that the CD64 domains do not sterically clash with the IgG Fc region, i.e. the solution structure of CD64 was sufficiently compact to allow IgG to bind to its high-affinity Fcγ receptor. This improved understanding may result in novel approaches to inhibit CD64 function, and opens the way for the solution study of the full-length CD64-IgG complex.
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