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Updated: Jul 10, 2025

Bead Aggregation Assays for the Characterization of Putative Cell Adhesion Molecules
Published on: October 17, 2014
Contactin 2 homophilic adhesion structure and conformational plasticity
Lucas M P Chataigner1, Lena Thärichen1, J Wouter Beugelink1
1Structural Biochemistry, Bijvoet Centre for Biomolecular Research, Faculty of Science, Utrecht University, Universiteitsweg 99, Utrecht 3584 CG, the Netherlands.
Insights
Contactin 2, a neural glycoprotein, forms oligomers through flexible domain interactions. This plasticity and specific binding sites enable its role in cell adhesion within the nervous system.
Area of Science:
- Neuroscience
- Structural Biology
- Biochemistry
Background:
- Contactin 2 is a cell-surface glycoprotein crucial for nervous system development.
- It mediates homotypic cell-cell interactions, influencing cell guidance, differentiation, and adhesion.
- The protein comprises six immunoglobulin (Ig) and four fibronectin type III (FnIII) domains, with the N-terminal Ig domains forming a horseshoe structure involved in dimerization.
Purpose of the Study:
- To determine the crystal structure of the six-domain contactin 2 ectodomain (contactin 2Ig1-6).
- To elucidate the mechanisms of contactin 2 oligomerization and its role in cell adhesion.
- To investigate the structural basis for contactin 2's function in diverse intercellular environments.
Main Methods:
- X-ray crystallography for high-resolution structure determination.
- Size exclusion chromatography with multi-angle light scattering (SEC-MALS).
- Small-angle X-ray scattering (SAXS) and native mass spectrometry (MS).
- Negative-stain electron microscopy.
Main Results:
- The crystal structure reveals the Ig5-Ig6 domains are oriented away from the Ig1-4 horseshoe structure, with flexible interdomain connections.
- Contactin 2Ig1-6 exhibits two distinct dimer states (via Ig1-Ig2 and Ig3-Ig6 interactions), facilitating the formation of larger oligomers.
- Oligomerization is dependent on glycosylation, and the full ectodomain displays inherent plasticity.
- Intermolecular binding sites and ectodomain plasticity explain its function as a homotypic adhesion molecule.
Conclusions:
- The structural flexibility and distinct binding modes of contactin 2 are key to its oligomerization.
- Glycan-dependent oligomerization and inherent plasticity enable contactin 2 to mediate cell adhesion in various neural contexts.
- This study provides a structural basis for understanding contactin 2's function in neural development and organization.
Abstract:
The cell-surface attached glycoprotein contactin 2 is ubiquitously expressed in the nervous system and mediates homotypic cell-cell interactions to organize cell guidance, differentiation, and adhesion. Contactin 2 consists of six Ig and four fibronectin type III domains (FnIII) of which the first four Ig domains form a horseshoe structure important for homodimerization and oligomerization. Here we report the crystal structure of the six-domain contactin 2Ig1-6 and show that the Ig5-Ig6 combination is oriented away from the horseshoe with flexion in interdomain connections. Two distinct dimer states, through Ig1-Ig2 and Ig3-Ig6 interactions, together allow formation of larger oligomers. Combined size exclusion chromatography with multiangle light scattering (SEC-MALS), small-angle X-ray scattering (SAXS) and native MS analysis indicates contactin 2Ig1-6 oligomerizes in a glycan dependent manner. SAXS and negative-stain electron microscopy reveals inherent plasticity of the contactin 2 full-ectodomain. The combination of intermolecular binding sites and ectodomain plasticity explains how contactin 2 can function as a homotypic adhesion molecule in diverse intercellular environments.
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