Adaptive GPU-accelerated force calculation for interactive rigid molecular docking using haptics

J Mol Graph Model. 2015 Sep:61:1-12. doi: 10.1016/j.jmgm.2015.06.003. Epub 2015 Jun 24.

Abstract

Molecular docking systems model and simulate in silico the interactions of intermolecular binding. Haptics-assisted docking enables the user to interact with the simulation via their sense of touch but a stringent time constraint on the computation of forces is imposed due to the sensitivity of the human haptic system. To simulate high fidelity smooth and stable feedback the haptic feedback loop should run at rates of 500Hz to 1kHz. We present an adaptive force calculation approach that can be executed in parallel on a wide range of Graphics Processing Units (GPUs) for interactive haptics-assisted docking with wider applicability to molecular simulations. Prior to the interactive session either a regular grid or an octree is selected according to the available GPU memory to determine the set of interatomic interactions within a cutoff distance. The total force is then calculated from this set. The approach can achieve force updates in less than 2ms for molecular structures comprising hundreds of thousands of atoms each, with performance improvements of up to 90 times the speed of current CPU-based force calculation approaches used in interactive docking. Furthermore, it overcomes several computational limitations of previous approaches such as pre-computed force grids, and could potentially be used to model receptor flexibility at haptic refresh rates.

Keywords: Force feedback; Molecular docking; Protein–protein interactions; Proximity querying; Structure-based drug design.

MeSH terms

  • Algorithms
  • Animals
  • Aprotinin / chemistry
  • Benchmarking
  • Binding Sites
  • Cattle
  • Chaperonin 10 / chemistry
  • Chaperonin 60 / chemistry
  • Computer Graphics*
  • Epidermal Growth Factor / chemistry
  • ErbB Receptors / chemistry
  • Humans
  • Molecular Docking Simulation / instrumentation
  • Molecular Docking Simulation / methods*
  • Niacinamide / analogs & derivatives
  • Niacinamide / chemistry
  • Phenylurea Compounds / chemistry
  • Protein Binding
  • Proto-Oncogene Proteins B-raf / chemistry
  • Sorafenib
  • Trypsin / chemistry
  • User-Computer Interface*

Substances

  • Chaperonin 10
  • Chaperonin 60
  • Phenylurea Compounds
  • Niacinamide
  • Epidermal Growth Factor
  • Aprotinin
  • Sorafenib
  • EGFR protein, human
  • ErbB Receptors
  • BRAF protein, human
  • Proto-Oncogene Proteins B-raf
  • Trypsin