Related Experiment Video
Updated: May 11, 2026

Spatial Separation of Molecular Conformers and Clusters
Published on: January 9, 2014
Functional understanding of solvent structure in GroEL cavity through dipole field analysis
Jeffrey K Weber1, Vijay S Pande
1Department of Chemistry, Stanford University, Stanford, California 94305-5080, USA.
Abstract:
Solvent plays a ubiquitous role in all biophysical phenomena. Yet, just how the molecular nature of water impacts processes in biology remains an important question. While one can simulate the behavior of water near biomolecules such as proteins, it is challenging to gauge the potential structural role solvent plays in mediating both kinetic and equilibrium processes. Here, we propose an analysis scheme for understanding the nature of solvent structure at a local level. We first calculate coarse-grained dipole vector fields for an explicitly solvated system simulated through molecular dynamics. We then analyze correlations between these vector fields to characterize water structure under biologically relevant conditions. In applying our method to the interior of the wild type chaperonin complex GroEL+ES, along with nine additional mutant GroEL complexes, we find that dipole field correlations are strongly related to chaperonin function.
Related Concept Videos
Intermolecular Forces
Intermolecular Forces
Entropy and Solvation
Solubility
A solution is a homogeneous mixture composed of a solvent, the major component, and a solute, the minor component. The physical state of a solution—solid, liquid, or gas—is typically the same as that of the solvent. Solute concentrations are often described with qualitative terms such as dilute (of relatively low concentration) and concentrated (of relatively high concentration).
In a solution, the solute particles (molecules, atoms, and/or ions)...
Chemical and Solubility Equilibria
Molecular Geometry and Dipole Moments
