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Variational Implicit-Solvent Modeling of Host–Guest Binding: A Case Study on Cucurbit[7]uril
- Source :
- Journal of Chemical Theory and Computation
- Publication Year :
- 2013
- Publisher :
- American Chemical Society (ACS), 2013.
-
Abstract
- The synthetic host cucurbit[7]uril (CB[7]) binds aromatic guests or metal complexes with ultrahigh affinity compared with that typically displayed in protein-ligand binding. Due to its small size, CB[7] serves as an ideal receptor-ligand system for developing computational methods for molecular recognition. Here, we apply the recently developed variational implicit-solvent model (VISM), numerically evaluated by the level-set method, to study hydration effects in the high-affinity binding of the B2 bicyclo[2.2.2]octane derivative to CB[7]. For the unbound host, we find that the host cavity favors the hydrated state over the dry state due to electrostatic effects. For the guest binding, we find reasonable agreement to experimental binding affinities. Dissection of the individual VISM free-energy contributions shows that the major driving forces are water-mediated hydrophobic interactions and the intrinsic (vacuum) host-guest van der Waals interactions. These findings are in line with recent experiments and molecular dynamics simulations with explicit solvent. It is expected that the level-set VISM, with further refinement on the electrostatic descriptions, can efficiently predict molecular binding and recognition in a wide range of future applications.
- Subjects :
- 010304 chemical physics
Bicyclic molecule
Nanotechnology
010402 general chemistry
01 natural sciences
Article
0104 chemical sciences
Computer Science Applications
Solvent
Metal
Hydrophobic effect
chemistry.chemical_compound
symbols.namesake
Molecular recognition
chemistry
Chemical physics
visual_art
0103 physical sciences
visual_art.visual_art_medium
symbols
Physical and Theoretical Chemistry
van der Waals force
Derivative (chemistry)
Octane
Subjects
Details
- ISSN :
- 15499626 and 15499618
- Volume :
- 9
- Database :
- OpenAIRE
- Journal :
- Journal of Chemical Theory and Computation
- Accession number :
- edsair.doi.dedup.....b696a2292a829ec880e5f2ef274ba9af