Mobile linkers on DNA-coated colloids: valency without patches
Abstract
Colloids coated with single-stranded DNA (ssDNA) can bind selectively to other colloids coated with complementary ssDNA. The fact that DNA-coated colloids (DNACCs) can bind to specific partners opens the prospect of making colloidal `molecules'. However, in order to design DNACC-based molecules, we must be able to control the valency of the colloids, i.e. the number of partners to which a given DNACC can bind. One obvious, but not very simple approach is to decorate the colloidal surface with patches of single-stranded DNA that selectively bind those on other colloids. Here we propose a design principle that exploits many-body effects to control the valency of otherwise isotropic colloids. Using a combination of theory and simulation, we show that we can tune the valency of colloids coated with mobile ssDNA, simply by tuning the non-specific repulsion between the particles. Our simulations show that the resulting effective interactions lead to low-valency colloids self-assembling in peculiar open structures, very different from those observed in DNACCs with immobile DNA linkers.
Keywords
Cite
@article{arxiv.1406.2870,
title = {Mobile linkers on DNA-coated colloids: valency without patches},
author = {Stefano Angioletti-Uberti and Patrick Varilly and Bortolo M. Mognetti and Daan Frenkel},
journal= {arXiv preprint arXiv:1406.2870},
year = {2014}
}
Comments
Version Accepted in Physical Review Letters. A coupe of typos in equation corrected