From toroidal to rod-like condensates of semiflexible polymers
arXiv:1401.4300 · doi:10.1063/1.4863996
Abstract
The competition between toroidal and rod-like conformations as possible ground states for DNA condensation is studied as a function of the stiffness, the length of the DNA and the form of the long-range interactions between neighboring molecules, using analytical theory supported by Monte Carlo simulations. Both conformations considered are characterized by a local nematic order with hexagonal packing symmetry of neighboring DNA molecules, but differ in global configuration of the chain and the distribution of its curvature as it wraps around to form a condensate. The long-range interactions driving the DNA condensation are assumed to be of the form pertaining to the attractive depletion potential as well as the attractive counterion induced soft potential. In the stiffness-length plane we find a transition between rod-like to toroid condensate for increasing stiffness at a fixed chain length . Strikingly, the transition line is found to have a dependence irrespective of the details of the long-range interactions between neighboring molecules. When realistic DNA parameters are used, our description reproduces rather well some of the experimental features observed in DNA condensates.
13 pages, 13 figures
References in corpus (1)
Cited by in corpus (12)
- Effective stiffness and formation of secondary structures in a protein-like model
- Theory and simulations of toroidal and rod-like structures in single-molecule DNA condensation
- Effective interactions between fluid membranes
- Chain stiffness bridges conventional polymer and bio-molecular phases}
- Grand-canonical simulation of DNA condensation with two salts, affect of divalent counterion size
- Phase diagram of the ground states of DNA condensates
- Phase behaviour of semiflexible lattice polymers in poor-solvent solution: mean-field theory and Monte Carlo simulations
- DNA likecharge attraction and overcharging by divalent counterions in the presence of divalent coions
- Phase behaviour and self-assembly of semiflexible polymers in poor-solvent solutions
- From Octopus to Dendrite - Semiflexible Polyelectrolyte Brush Condensates in Trivalent Counterion Solution
- Spool-nematic ordering of dsDNA and dsRNA under confinement
- Energetic preference and topological constraint effects on the formation of DNA twisted toroidal bundles