Dynamics of particles with "key-lock" interactions
Abstract
The dynamics of particles interacting by key-lock binding of attached biomolecules are studied theoretically. Examples of such systems include DNA-functionalized colloids as well as nanoparticles grafted with antibodies to cell membrane proteins. Depending on the coverage of the functional groups, we predict two distinct regimes separated by a percolation transition. In the localized regime at low coverage, the system exhibits a broad, power law like distribution of particle departure times. At higher coverage, there is an interplay between departure dynamics and particle diffusion. This interplay leads to a sharp increase of the departure times, a phenomenon qualitatively similar to aging in glassy systems. This diffusive regime is analogous to dispersive transport in disordered semiconductors: depending on the interaction parameters, the diffusion behavior ranges from standard diffusion to anomalous, subdiffusive behavior. The connection to recent experiments and implications for future studies are discussed.
Cite
@article{arxiv.cond-mat/0612474,
title = {Dynamics of particles with "key-lock" interactions},
author = {Nicholas A. Licata and Alexei V. Tkachenko},
journal= {arXiv preprint arXiv:cond-mat/0612474},
year = {2007}
}
Comments
4 pages, 6 figures