Electrostatics of nanosystems: Application to microtubules and the ribosome

Электростатика наносистем: применение к микротрубочкам и рибосоме
J. Andrew McCammon, David Sept, Simpson Joseph, Nathan Baker, Michael Holst
2001-08-21

Poisson-Boltzmann equationelectrostatic potentialmicrotubulesnumerical methodsribosome
Evaluation of the electrostatic properties of biomolecules has become a standard practice in molecular biophysics. Foremost among the models used to elucidate the electrostatic potential is the Poisson-Boltzmann equation; however, existing methods for solving this equation have limited the scope of accurate electrostatic calculations to relatively small biomolecular systems. Here we present the application of numerical methods to enable the trivially parallel solution of the Poisson-Boltzmann equation for supramolecular structures that are orders of magnitude larger in size. As a demonstration of this methodology, electrostatic potentials have been calculated for large microtubule and ribosome structures. The results point to the likely role of electrostatics in a variety of activities of these structures.
1
Applied these scalable electrostatic calculations to large microtubule structures, producing electrostatic potentials for systems orders of magnitude larger than prior studies.
2
Applied these scalable electrostatic calculations to large ribosome structures, producing electrostatic potentials for systems orders of magnitude larger than prior studies.
3
Developed numerical methods that enable trivially parallel solution of the Poisson-Boltzmann equation for supramolecular structures much larger than previously tractable.
4
Results indicate that electrostatics likely play significant roles in multiple activities of microtubules and ribosomes.

Supramolecular biomolecular structures (large microtubule and ribosome assemblies)

Electrostatic potentials and electrostatic properties of these large biomolecular assemblies computed via numerical Poisson–Boltzmann solutions (scalable/trivially parallel methods)

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Publication Date
2001-08-21
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Authors
J. Andrew McCammon
David Sept
Simpson Joseph
Nathan Baker
Michael Holst
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