Theory and Simulation of DNA-Coated Colloids: a Guide for Rational Design
arXiv:1601.07631 · doi:10.1039/C5CP06981E
Abstract
By exploiting the exquisite selectivity of DNA hybridization, DNA-Coated Colloids (DNACCs) can be made to self-assemble in a wide variety of structures. The beauty of this system stems largely from its exceptional versatility and from the fact that a proper choice of the grafted DNA sequences yields fine control over the colloidal interactions. Theory and simulations have an important role to play in the optimal design of self- assembling DNACCs. At present, the powerful model-based design tools are not widely used, because the theoretical literature is fragmented and the connection between different theories is often not evident. In this Perspective, we aim to discuss the similarities and differences between the different models that have been described in the literature, their underlying assumptions, their strengths and their weaknesses. Using the tools described in the present Review, it should be possible to move towards a more rational design of novel self-assembling structures of DNACCs and, more generally, of systems where ligand-receptors bonds are used to control interactions.
Pre-refereed version (some small differences with final one, nothing major) Phys. Chem. Chem. Phys., 2016
References in corpus (6)
- Volume and porosity thermal regulation in lipid mesophases by coupling mobile ligands to soft membranes
- Mobile linkers on DNA-coated colloids: valency without patches
- A multi-blob representation of semi-dilute polymer solutions
- Statistical Mechanics of DNA-Mediated Colloidal Aggregation
- Insights into DNA-mediated interparticle interactions from a coarse-grained model
- A new configurational bias scheme for sampling supramolecular structures
Cited by in corpus (19)
- Programmable interactions with biomimetic DNA linkers at fluid membranes and interfaces
- Simulating a Chemically-Fueled Molecular Motor with Nonequilibrium Molecular Dynamics
- Comprehensive view of microscopic interactions between DNA-coated colloids
- Exploiting Receptors Competition to Enhance Nanoparticles Binding Selectivity
- Efficient sampling of reversible cross-linking polymers: Self-assembly of single-chain polymeric nanoparticles
- Entropy stabilizes floppy crystals of mobile DNA-coated colloids
- Programmable patchy particles for materials design
- Translational and Rotational Dynamics of Colloidal Particles Interacting through Reacting Linkers
- Assembly of Complex Colloidal Systems Using DNA
- Free energy of ligand-receptor systems forming multimeric complexes
- Modeling the relative dynamics of DNA-coated colloids
- A Coarse-Grained Simulation Model for Self-Assembly of Liquid Droplets Featuring Explicit Mobile Binders
- Steric interactions between mobile ligands facilitate complete wrapping in passive endocytosis
- DNA-coated Functional Oil Droplets
- Surface-triggered cascade reactions between DNA linkers direct self-assembly of colloidal crystals of controllable thickness
- First-Order "Hyper-selective" Binding Transition of Multivalent Particles Under Force
- Multivalent "Attacker & Guard" Strategy for Targeting Surfaces with Low Receptor Density
- Self assembled linear polymeric chains with tuneable semiflexibility using isotropic interactions
- Transformable Super-Isostatic Crystals Self-Assembled from Segment Colloidal Rods