Scinovex
article Open AccessTop 1% cited

Improvements to the <scp>APBS</scp> biomolecular solvation software suite

Protein Science · 2017 · Vol. 27(1) · pp. 112–128
Elizabeth JurrusDave EngelKeith T. StarKyle MonsonJuan BrandiLisa E. FelbergDavid H. BrookesLeighton WilsonJiahui ChenKarina R. LilesMinju ChunPeter LiDavid W. GoharaT. J. DolinskyRobert KonečnýDavid Ryan KoesJens Erik NielsenTeresa Head‐GordonWeihua GengRobert KrasnyGuo‐Wei WeiMichael HolstJ. Andrew McCammonNathan Baker

Abstract

The Adaptive Poisson-Boltzmann Solver (APBS) software was developed to solve the equations of continuum electrostatics for large biomolecular assemblages that have provided impact in the study of a broad range of chemical, biological, and biomedical applications. APBS addresses the three key technology challenges for understanding solvation and electrostatics in biomedical applications: accurate and efficient models for biomolecular solvation and electrostatics, robust and scalable software for applying those theories to biomolecular systems, and mechanisms for sharing and analyzing biomolecular electrostatics data in the scientific community. To address new research applications and advancing computational capabilities, we have continually updated APBS and its suite of accompanying software since its release in 2001. In this article, we discuss the models and capabilities that have recently been implemented within the APBS software package including a Poisson-Boltzmann analytical and a semi-analytical solver, an optimized boundary element solver, a geometry-based geometric flow solvation model, a graph theory-based algorithm for determining pK<sub>a</sub> values, and an improved web-based visualization tool for viewing electrostatics.

Protein Structure and DynamicsGene Regulatory Network AnalysisAdvanced Fluorescence Microscopy TechniquesElectrostaticsSolverSoftware suiteSoftwareSolvationComputer scienceComputational scienceSuiteScalabilityRange (aeronautics)

MeSH terms

Models, MolecularSoftwareStatic Electricity

Funding

  • National Science Foundation
  • U.S. Department of Defense
  • U.S. Department of Energy
  • National Institutes of Health
  • Office of Science
  • National Defense Science and Engineering Graduate
  • National Institute of General Medical Sciences
  • Division of Graduate Education
  • Division of Mathematical Sciences
  • Basic Energy Sciences
Citations
2,395
FWCI
42.09
field-weighted impact
References
95
Percentile
100%
vs. same field & year
Citations per year
Cited by
gmx_MMPBSA: A New Tool to Perform End-State Free Energy Calculations with GROMACS
Journal of Chemical Theory and Computation · 2021 · 2,728 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.