Related Experiment Video
Updated: Jan 20, 2026

Detecting the Ligand-binding Domain Dimerization Activity of Estrogen Receptor Alpha Using the Mammalian Two-Hybrid Assay
Published on: December 19, 2018
CD23 is a glycan-binding receptor in some mammalian species
Sabine A F Jégouzo1, Hadar Feinberg2, Andrew G Morrison1
1Department of Life Sciences, Imperial College London, London SW7 2AZ, United Kingdom.
Insights
CD23, a receptor on B lymphocytes, binds to various sugars in most mammals but not humans. This difference is due to mutations in human CD23, impacting its role in immunity and microbial interactions.
Area of Science:
- Immunology
- Glycobiology
- Structural Biology
Background:
- CD23 is the low-affinity IgE receptor on B lymphocytes and other cells.
- Its C-terminal lectin-like domain resembles C-type carbohydrate-recognition domains (CRDs).
- CD23 binding to IgE does not involve sugars, despite possessing a potential sugar-binding site.
Purpose of the Study:
- To investigate the carbohydrate-binding capabilities of CD23 across different species.
- To elucidate the structural basis for CD23's ligand interactions.
- To understand the evolutionary divergence of CD23 function.
Main Methods:
- Solid-phase binding competition assays
- Glycoprotein blotting experiments
- Glycan array analysis
- Crystal structure determination of cow CD23 CRD
Main Results:
- Cow and mouse CD23 CRDs bind mannose, GlcNAc, glucose, and fucose.
- Binding interactions involve a single terminal sugar residue in an open binding site.
- Human CD23 lacks sugar-binding activity due to mutations in its CRD.
- Species-specific variations in CD23 ligand binding were observed.
Conclusions:
- CD23 functions as a sugar-binding receptor in most mammals, potentially recognizing microorganisms.
- Human CD23 has lost sugar-binding capacity due to evolutionary mutations.
- Species-specific ligand binding suggests diverse roles for CD23 across organisms.
Abstract:
CD23, the low-affinity IgE receptor found on B lymphocytes and other cells, contains a C-terminal lectin-like domain that resembles C-type carbohydrate-recognition domains (CRDs) found in many glycan-binding receptors. In most mammalian species, the CD23 residues required to form a sugar-binding site are present, although binding of CD23 to IgE does not involve sugars. Solid-phase binding competition assays, glycoprotein blotting experiments, and glycan array analysis employing the lectin-like domains of cow and mouse CD23 demonstrate that they bind to mannose, GlcNAc, glucose, and fucose and to glycoproteins that bear these sugars in nonreducing terminal positions. Crystal structures of the cow CRD in the presence of α-methyl mannoside and GlcNAcβ1-2Man reveal that a range of oligosaccharide ligands can be accommodated in an open binding site in which most interactions are with a single terminal sugar residue. Although mouse CD23 shows a pattern of monosaccharide and glycoprotein binding similar to cow CD23, the binding is weaker. In contrast, no sugar binding was observed in similar experiments with human CD23. The absence of sugar-binding activity correlates with accumulation of mutations in the gene for CD23 in the primate lineage leading to humans, resulting in loss of key sugar-binding residues. These results are consistent with a role for CD23 in many species as a receptor for potentially pathogenic microorganisms as well as IgE. However, the ability of CD23 to bind several different ligands varies between species, suggesting that it has distinct functions in different organisms.
Related Concept Videos
09:07Detecting the Ligand-binding Domain Dimerization Activity of Estrogen Receptor Alpha Using the Mammalian Two-Hybrid Assay
08:26Analysis of N-glycans from Raphanus sativus Cultivars Using PNGase H+
04:57Detecting Circulating Anti-Glycan Antibodies with a Printed Glycan Array
11:21Bioinformatics Resources for the Study of Glycan-Mediated Protein Interactions
12:30Glycan Profiling of Plant Cell Wall Polymers using Microarrays
07:12Microarray Polymer Profiling (MAPP) for High-Throughput Glycan Analysis

