Related Experiment Video
Updated: Apr 18, 2026

Real-time Iontophoresis with Tetramethylammonium to Quantify Volume Fraction and Tortuosity of Brain Extracellular Space
Published on: July 24, 2017
IMPORTANCE OF EXCLUDED VOLUME AND HYDRODYNAMIC INTERACTIONS ON MACROMOLECULAR DIFFUSION IN VIVO.
Tadashi Ando1, Jeffrey Skolnick1
1Center for the Study of Systems Biology, School of Biology, Georgia Institute of Technology 250 14th Street NW, Atlanta, GA 30318-5304, USA.
Abstract:
The interiors of all living cells are highly crowded with macromolecules, which results in a considerable difference between the thermodynamics and kinetics of biological reactions in vivo from that in vitro. To begin to elucidate the principles of intermolecular dynamics in the crowded environment of cells, employing Brownian dynamics (BD) simulations, we examined possible mechanism(s) responsible for the great reduction in diffusion constants of macromolecules in vivo from that at infinite dilution. In an E. coli cytoplasm modelcomprised of 15 different macromolecule types at physiological concentrations, where macromolecules were represented by spheres with their Stokes radii, BD simulations were performed with and without hydrodynamic interactions (HI). Without HI, the calculated diffusion constant of green fluorescent protein (GFP) is much larger than experiment. On the other hand, when HI were considered, the in vivo experimental GFP diffusion constant is almost reproduced without adjustable parameters. In addition, HI give rise to significant, size independent intermolecular dynamic correlations. These results suggest that HI play an important role on macromolecular dynamics in vivo.
More Related Videos
Related Concept Videos
Drug Distribution: Volume of Distribution
Theories of Dissolution: The Danckwerts' Model and Interfacial Barrier Model
Protein Diffusion in the Membrane
Physiological Pharmacokinetic Models: Blood Flow-Limited Versus Diffusion-Limited Models
Diffusion
Diffusion

