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Characterization of Glycoproteins with the Immunoglobulin Fold by X-Ray Crystallography and Biophysical Techniques
Published on: July 5, 2018
Crystal Structure of the Extracellular Domain of the Human Dendritic Cell Surface Marker CD83
Christiane S Heilingloh1, Stefan Klingl2, Claudia Egerer-Sieber2
1Department of Immune Modulation, University Hospital Erlangen, Friedrich-Alexander-University Erlangen-Nürnberg, Hartmannstr. 14, D-91052 Erlangen, Germany.
Insights
The soluble CD83 protein (sCD83) has an unusual structure lacking typical V-set Ig-domains, and this region is not essential for its immune-suppressive function. CD83 likely interacts with other immune cells through mixed homotypic and heterotypic interactions.
Area of Science:
- Immunology
- Structural Biology
- Biochemistry
Background:
- CD83 is a type-I membrane protein crucial for identifying mature dendritic cells.
- Soluble CD83 (sCD83) exhibits immune-suppressive activity, contrasting with the co-stimulatory role of full-length CD83.
- The molecular architecture and functional mechanism of CD83 remain largely uncharacterized.
Purpose of the Study:
- To determine the crystal structure of human soluble CD83 (sCD83).
- To elucidate the molecular architecture of sCD83 and its functional implications.
- To investigate the role of specific structural segments in sCD83's immune-suppressive activity.
Main Methods:
- X-ray crystallography (resolution up to 1.7Å) in three crystal forms.
- Mass spectrometry and limited proteolysis experiments.
- Bioinformatics analyses and functional assays (TNF-α assay) with chimeric proteins.
Main Results:
- The crystal structure of sCD83 revealed the absence of typical V-set Ig-domain β-strands C', C″, and D.
- This segment exhibits high accessibility, low sequence conservation, and predicted disorder, and is not essential for immune suppression.
- sCD83 forms dimers and trimers, showing structural similarities to B7 family members and CD48.
Conclusions:
- The unusual structural segment in sCD83 is not involved in its immune-suppressive function.
- CD83 likely mediates its immunological effects through mixed homotypic and heterotypic interactions within the immunological synapse.
- Structural insights into CD83 provide a basis for understanding its role in immune regulation.
Abstract:
CD83 is a type-I membrane protein and an efficient marker for identifying mature dendritic cells. Whereas membrane-bound, full-length CD83 co-stimulates the immune system, a soluble variant (sCD83), consisting of the extracellular domain only, displays strong immune-suppressive activities. Besides a prediction that sCD83 adopts a V-set Ig-like fold, however, little is known about the molecular architecture of CD83 and the mechanism by which CD83 exerts its function on dendritic cells and additional immune cells. Here, we report the crystal structure of human sCD83 up to a resolution of 1.7Å solved in three different crystal forms. Interestingly, β-strands C', C″, and D that are typical for V-set Ig-domains could not be traced in sCD83. Mass spectrometry analyses, limited proteolysis experiments, and bioinformatics studies show that the corresponding segment displays enhanced main-chain accessibility, extraordinary low sequence conservation, and a predicted high disorder propensity. Chimeric proteins with amino acid swaps in this segment show unaltered immune-suppressive activities in a TNF-α assay when compared to wild-type sCD83. This strongly indicates that this segment does not participate in the biological activity of CD83. The crystal structure of CD83 shows the recurrent formation of dimers and trimers in the various crystal forms and reveals strong structural similarities between sCD83 and B7 family members and CD48, a signaling lymphocyte activation molecule family member. This suggests that CD83 exerts its immunological activity by mixed homotypic and heterotypic interactions as typically observed for proteins present in the immunological synapse.
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