Force-induced rupture of a DNA duplex
arXiv:1502.03623 · doi:10.1021/acsnano.5b04726
Abstract
The rupture of double-stranded DNA under stress is a key process in biophysics and nanotechnology. In this article we consider the shear-induced rupture of short DNA duplexes, a system that has been given new importance by recently designed force sensors and nanotechnological devices. We argue that rupture must be understood as an activated process, where the duplex state is metastable and the strands will separate in a finite time that depends on the duplex length and the force applied. Thus, the critical shearing force required to rupture a duplex within a given experiment depends strongly on the time scale of observation. We use simple models of DNA to demonstrate that this approach naturally captures the experimentally observed dependence of the critical force on duplex length for a given observation time. In particular, the critical force is zero for the shortest duplexes, before rising sharply and then plateauing in the long length limit. The prevailing approach, based on identifying when the presence of each additional base pair within the duplex is thermodynamically unfavorable rather than allowing for metastability, does not predict a time-scale-dependent critical force and does not naturally incorporate a critical force of zero for the shortest duplexes. Additionally, motivated by a recently proposed force sensor, we investigate application of stress to a duplex in a mixed mode that interpolates between shearing and unzipping. As with pure shearing, the critical force depends on the time scale of observation; at a fixed time scale and duplex length, the critical force exhibits a sigmoidal dependence on the fraction of the duplex that is subject to shearing.
10 pages, 6 figures
References in corpus (6)
- Sequence-dependent thermodynamics of a coarse-grained DNA model
- Single-molecule derivation of salt dependent base-pair free energies in DNA
- The role of collective motion in examples of coarsening and self-assembly
- Plectoneme tip bubbles: Coupled denaturation and writhing in supercoiled DNA
- The role of loop stacking in the dynamics of DNA hairpin formation
- Shear Unzipping of DNA
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- Base-pair mismatch can destabilize small DNA loops through cooperative kinking
- Active liquid crystals powered by force-sensing DNA-motor clusters
- Characterizing the free-energy landscapes of DNA origamis
- Measuring internal forces in single-stranded DNA: Application to a DNA force clamp
- Free-energy landscapes of DNA and its assemblies: Perspectives from coarse-grained modelling