We investigate system-size effects on the rotational diffusion of membrane proteins and other membrane-embedded molecules in molecular dynamics simulations. We find that the rotational diffusion coefficient slows down relative to the infinite-system value by a factor of one minus the ratio of protein and box areas. This correction factor follows from the hydrodynamics of rotational flows under periodic boundary conditions and is rationalized in terms of Taylor-Couette flow. For membrane proteins like transporters, channels, or receptors in typical simulation setups, the protein-covered area tends to be relatively large, requiring a significant finite-size correction. Molecular dynamics simulations of the protein adenine nucleotide transloca...
We study the system-size dependence of translational diffusion coefficients and viscosities in molec...
AbstractExperimentally determined diffusion constants are often used to elucidate the size and oligo...
We present an atomistic level computational investigation of the dynamics of a signaling protein, mo...
We investigate system-size effects on the rotational diffusion of membrane proteins and other membra...
We show that the rotational dynamics of proteins and nucleic acids determined from molecular dynamic...
By performing molecular dynamics simulations with up to 132 million coarse-grained particles in half...
Membrane proteins travel along cellular membranes and reorient themselves to form functional oligome...
We investigate the dependence of single-particle diffusion coefficients on the size and shape of the...
We investigate the dependence of single-particle diffusion coefficients on the size and shape of the...
Atomistic simulations of three different proteins at different concentrations are performed to obtai...
The diffusive behavior of macromolecules in solution is a key factor in the kinetics of macromolecul...
We use Molecular Dynamics and Monte Carlo simulations to examine molecular transport phenomena in na...
Shear viscosity of lipid membranes dictates how fast lipids, proteins, and other membrane constituen...
We show that under proper assumptions it is possible to estimate with good precision the principal v...
AbstractWe use Molecular Dynamics and Monte Carlo simulations to examine molecular transport phenome...
We study the system-size dependence of translational diffusion coefficients and viscosities in molec...
AbstractExperimentally determined diffusion constants are often used to elucidate the size and oligo...
We present an atomistic level computational investigation of the dynamics of a signaling protein, mo...
We investigate system-size effects on the rotational diffusion of membrane proteins and other membra...
We show that the rotational dynamics of proteins and nucleic acids determined from molecular dynamic...
By performing molecular dynamics simulations with up to 132 million coarse-grained particles in half...
Membrane proteins travel along cellular membranes and reorient themselves to form functional oligome...
We investigate the dependence of single-particle diffusion coefficients on the size and shape of the...
We investigate the dependence of single-particle diffusion coefficients on the size and shape of the...
Atomistic simulations of three different proteins at different concentrations are performed to obtai...
The diffusive behavior of macromolecules in solution is a key factor in the kinetics of macromolecul...
We use Molecular Dynamics and Monte Carlo simulations to examine molecular transport phenomena in na...
Shear viscosity of lipid membranes dictates how fast lipids, proteins, and other membrane constituen...
We show that under proper assumptions it is possible to estimate with good precision the principal v...
AbstractWe use Molecular Dynamics and Monte Carlo simulations to examine molecular transport phenome...
We study the system-size dependence of translational diffusion coefficients and viscosities in molec...
AbstractExperimentally determined diffusion constants are often used to elucidate the size and oligo...
We present an atomistic level computational investigation of the dynamics of a signaling protein, mo...