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Mechanism of allosteric propagation across a β-sheet structure investigated by molecular dynamics simulations
Gianluca Interlandi1, Wendy E Thomas1
1Department of Bioengineering, University of Washington, Seattle, Washington, 98195.
Abstract:
The bacterial adhesin FimH consists of an allosterically regulated mannose-binding lectin domain and a covalently linked inhibitory pilin domain. Under normal conditions, the two domains are bound to each other, and FimH interacts weakly with mannose. However, under tensile force, the domains separate and the lectin domain undergoes conformational changes that strengthen its bond with mannose. Comparison of the crystallographic structures of the low and the high affinity state of the lectin domain reveals conformational changes mainly in the regulatory inter-domain region, the mannose binding site and a large β sheet that connects the two distally located regions. Here, molecular dynamics simulations investigated how conformational changes are propagated within and between different regions of the lectin domain. It was found that the inter-domain region moves towards the high affinity conformation as it becomes more compact and buries exposed hydrophobic surface after separation of the pilin domain. The mannose binding site was more rigid in the high affinity state, which prevented water penetration into the pocket. The large central β sheet demonstrated a soft spring-like twisting. Its twisting motion was moderately correlated to fluctuations in both the regulatory and the binding region, whereas a weak correlation was seen in a direct comparison of these two distal sites. The results suggest a so called "population shift" model whereby binding of the lectin domain to either the pilin domain or mannose locks the β sheet in a rather twisted or flat conformation, stabilizing the low or the high affinity state, respectively. Proteins 2016; 84:990-1008. © 2016 The Authors. Proteins: Structure, Function, and Bioinformatics Published by Wiley Periodicals, Inc.
Insights
Tensile force separates the FimH adhesin
Area of Science:
- Microbiology
- Structural Biology
- Biophysics
Background:
- The bacterial adhesin FimH mediates host cell adhesion through its mannose-binding lectin domain.
- FimH function is regulated by an inhibitory pilin domain and allosteric conformational changes.
- Tensile force triggers a transition from low to high mannose-binding affinity.
Purpose of the Study:
- To investigate the propagation of conformational changes within the FimH lectin domain under force.
- To elucidate the molecular mechanisms underlying the allosteric regulation of FimH mannose binding.
Main Methods:
- Molecular dynamics (MD) simulations were employed to study FimH conformational dynamics.
- Analysis focused on the inter-domain region, mannose binding site, and central β sheet.
Main Results:
- The inter-domain region compacts and buries hydrophobic surfaces upon pilin domain separation.
- The mannose binding site becomes more rigid and less accessible to water in the high-affinity state.
- A central β sheet exhibits spring-like twisting correlated with regulatory and binding regions.
Conclusions:
- A "population shift" model is proposed, where the β sheet's conformation stabilizes either the low or high affinity state.
- The study reveals how mechanical forces allosterically regulate protein-ligand interactions at a molecular level.
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