By performing molecular dynamics simulations with up to 132 million coarse-grained particles in half-micron sized boxes, we show that hydrodynamics quantitatively explains the finite-size effects on diffusion of lipids, proteins, and carbon nanotubes in membranes. The resulting Oseen correction allows us to extract infinite-system diffusion coefficients and membrane surface viscosities from membrane simulations despite the logarithmic divergence of apparent diffusivities with increasing box width. The hydrodynamic theory of diffusion applies also to membranes with asymmetric leaflets and embedded proteins, and to a complex plasma-membrane mimetic
In this article, we review our results on diffusion and phase separation in lipid membranes, as well...
We provide compelling evidence that different treatments of electrostatic interactions in molecular ...
International audienceWe consider the hydrodynamics of lipid bilayers containing transmembrane prote...
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...
We investigate system-size effects on the rotational diffusion of membrane proteins and other membra...
We investigate system-size effects on the rotational diffusion of membrane proteins and other membra...
AbstractThe observation of membrane domains in vivo and in vitro has triggered a renewed interest in...
Shear viscosity of lipid membranes dictates how fast lipids, proteins, and other membrane constituen...
The Saffman-Delbrück hydrodynamic model for lipid-bilayer membranes is modified to account for the p...
Lipid and protein lateral mobility is essential for biological function. Our theoretical understandi...
A persistent discrepancy exists between theoretical predictions and experimental observations for th...
AbstractExperimentally determined diffusion constants are often used to elucidate the size and oligo...
There is no comprehensive model for the dynamics of cellular membranes. Even mechanisms of basic dyn...
Lyman, EdwardThe computational capabilities of molecular dynamics (MD) simulations have greatly adva...
In this article, we review our results on diffusion and phase separation in lipid membranes, as well...
We provide compelling evidence that different treatments of electrostatic interactions in molecular ...
International audienceWe consider the hydrodynamics of lipid bilayers containing transmembrane prote...
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...
We investigate system-size effects on the rotational diffusion of membrane proteins and other membra...
We investigate system-size effects on the rotational diffusion of membrane proteins and other membra...
AbstractThe observation of membrane domains in vivo and in vitro has triggered a renewed interest in...
Shear viscosity of lipid membranes dictates how fast lipids, proteins, and other membrane constituen...
The Saffman-Delbrück hydrodynamic model for lipid-bilayer membranes is modified to account for the p...
Lipid and protein lateral mobility is essential for biological function. Our theoretical understandi...
A persistent discrepancy exists between theoretical predictions and experimental observations for th...
AbstractExperimentally determined diffusion constants are often used to elucidate the size and oligo...
There is no comprehensive model for the dynamics of cellular membranes. Even mechanisms of basic dyn...
Lyman, EdwardThe computational capabilities of molecular dynamics (MD) simulations have greatly adva...
In this article, we review our results on diffusion and phase separation in lipid membranes, as well...
We provide compelling evidence that different treatments of electrostatic interactions in molecular ...
International audienceWe consider the hydrodynamics of lipid bilayers containing transmembrane prote...