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Updated: Feb 28, 2026

Bead Aggregation Assays for the Characterization of Putative Cell Adhesion Molecules
Published on: October 17, 2014
A potential new, stable state of the E-cadherin strand-swapped dimer in solution
Alexandra Schumann-Gillett1,2, Alan E Mark1,3, Evelyne Deplazes4,5,6
1School of Chemistry and Molecular Biosciences (SCMB), University of Queensland, Brisbane, QLD, 4072, Australia.
Insights
Molecular dynamics simulations reveal a new stable conformation, the Y-dimer, for human E-cadherin trans strand-swapped dimers in solution. This finding suggests current crystal structures do not fully represent E-cadherin dimer dynamics.
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Dynamics
Background:
- E-cadherin is a key transmembrane glycoprotein for epithelial cell adhesion.
- Its ectodomain consists of five immunoglobulin-like domains.
- Known crystal structures show E-cadherin in monomer, X-dimer, or trans strand-swapped dimer conformations.
Purpose of the Study:
- To investigate the stability and conformational flexibility of the human E-cadherin trans strand-swapped dimer.
- To explore conformations adopted by E-cadherin dimers in solution beyond known crystal structures.
Main Methods:
- Utilized four independent 100 ns molecular dynamics simulations.
- Analyzed the stability and conformational changes of the human E-cadherin trans strand-swapped dimer.
Main Results:
- Simulations revealed a novel, stable conformation termed the 'Y-dimer'.
- The Y-dimer was present for over 90% of the combined simulation time.
- This conformation is stabilized by unique interactions not observed in crystal structures.
Conclusions:
- The Y-dimer represents a previously unreported, stable conformation of the human E-cadherin trans strand-swapped dimer in solution.
- Existing E-cadherin dimer crystal structures may not fully capture the dynamic conformations in solution.
Abstract:
E-cadherin is a transmembrane glycoprotein that facilitates inter-cellular adhesion in the epithelium. The ectodomain of the native structure is comprised of five repeated immunoglobulin-like domains. All E-cadherin crystal structures show the protein in one of three alternative conformations: a monomer, a strand-swapped trans homodimer and the so-called X-dimer, which is proposed to be a kinetic intermediate to forming the strand-swapped trans homodimer. However, previous studies have indicated that even once the trans strand-swapped dimer is formed, the complex is highly dynamic and the E-cadherin monomers may reorient relative to each other. Here, molecular dynamics simulations have been used to investigate the stability and conformational flexibility of the human E-cadherin trans strand-swapped dimer. In four independent, 100 ns simulations, the dimer moved away from the starting structure and converged to a previously unreported structure, which we call the Y-dimer. The Y-dimer was present for over 90% of the combined simulation time, suggesting that it represents a stable conformation of the E-cadherin dimer in solution. The Y-dimer conformation is stabilised by interactions present in both the trans strand-swapped dimer and X-dimer crystal structures, as well as additional interactions not found in any E-cadherin dimer crystal structures. The Y-dimer represents a previously unreported, stable conformation of the human E-cadherin trans strand-swapped dimer and suggests that the available crystal structures do not fully capture the conformations that the human E-cadherin trans homodimer adopts in solution.
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