Title :
Interactive Visualization of Molecular Surface Dynamics
Author :
Krone, Michael ; Bidmon, Katrin ; Ertl, Thomas
Author_Institution :
Visualization Res. Center VISUS, Univ. Stuttgart, Stuttgart, Germany
Abstract :
Molecular dynamics simulations of proteins play a growing role in various fields such as pharmaceutical, biochemical and medical research. Accordingly, the need for high quality visualization of these protein systems raises. Highly interactive visualization techniques are especially needed for the analysis of time-dependent molecular simulations. Beside various other molecular representations the surface representations are of high importance for these applications. So far, users had to accept a trade-off between rendering quality and performance - particularly when visualizing trajectories of time-dependent protein data. We present a new approach for visualizing the solvent excluded surface of proteins using a GPU ray casting technique and thus achieving interactive frame rates even for long protein trajectories where conventional methods based on precomputation are not applicable. Furthermore, we propose a semantic simplification of the raw protein data to reduce the visual complexity of the surface and thereby accelerate the rendering without impeding perception of the protein´s basic shape. We also demonstrate the application of our solvent excluded surface method to visualize the spatial probability density for the protein atoms over the whole period of the trajectory in one frame, providing a qualitative analysis of the protein flexibility.
Keywords :
biology computing; data visualisation; interactive systems; molecular biophysics; probability; proteins; rendering (computer graphics); GPU ray casting technique; interactive visualization techniques; molecular dynamics simulations; molecular surface dynamics; protein flexibility; protein solvent excluded surface; rendering quality; spatial probability density; time-dependent protein data; visual complexity; Acceleration; Analytical models; Casting; Data visualization; Medical simulation; Pharmaceuticals; Proteins; Shape; Solvents; Surface impedance; GPU; Isosurfaces; Molecular Visualization; Point-based Data; Ray Casting; Surface Extraction; Time-varying Data; Computational Biology; Computer Graphics; Computer Simulation; Models, Molecular; Molecular Conformation; Protein Conformation; Proteins; Surface Properties;
Journal_Title :
Visualization and Computer Graphics, IEEE Transactions on
DOI :
10.1109/TVCG.2009.157