Refolding dynamics of stretched biopolymers upon force quench
arXiv:0911.3530 · doi:10.1073/pnas.0905764106
Abstract
Single molecule force spectroscopy methods can be used to generate folding trajectories of biopolymers from arbitrary regions of the folding landscape. We illustrate the complexity of the folding kinetics and generic aspects of the collapse of RNA and proteins upon force quench, using simulations of an RNA hairpin and theory based on the de Gennes model for homopolymer collapse. The folding time, , depends asymmetrically on and where () is the stretch (quench) force, and is the transition mid-force of the RNA hairpin. In accord with experiments, the relaxation kinetics of the molecular extension, , occurs in three stages: a rapid initial decrease in the extension is followed by a plateau, and finally an abrupt reduction in that occurs as the native state is approached. The duration of the plateau increases as decreases (where is the time in which the force is reduced from to ). Variations in the mechanisms of force quench relaxation as is altered are reflected in the experimentally measurable time-dependent entropy, which is computed directly from the folding trajectories. An analytical solution of the de Gennes model under tension reproduces the multistage stage kinetics in . The prediction that the initial stages of collapse should also be a generic feature of polymers is validated by simulation of the kinetics of toroid (globule) formation in semiflexible (flexible) homopolymers in poor solvents upon quenching the force from a fully stretched state. Our findings give a unified explanation for multiple disparate experimental observations of protein folding.
31 pages 11 figures
References in corpus (5)
- Forced-unfolding and force-quench refolding of RNA hairpins
- Mechanical unfolding of RNA: From hairpins to structures with internal multiloops
- Measuring the energy landscape roughness and the transition state location of biomolecules using single molecule mechanical unfolding experiments
- Force Dependent Hopping Rates of RNA Hairpins can be Estimated from Accurate Measurement of the Folding Landscapes
- Folding and unfolding kinetics of a single semiflexible polymer
Cited by in corpus (10)
- Capturing the essence of folding and functions of biomolecules using Coarse-Grained Models
- Sacrificial bonds and hidden length in biomaterials -- a kinetic, constitutive description of strength and toughness in bone
- Folding of Protein L with implications for collapse in the denatured state ensemble
- Local Structure Order Assisted Two-step Crystal Nucleation in Polyethylene
- Force-clamp experiments reveal the free energy profile and diffusion coefficient of the collapse of proteins
- Weak temporal signals can synchronize and accelerate the transition dynamics of biopolymers under tension
- Exploring the energy landscape of biopolymers using single molecule force spectroscopy and molecular simulations
- The Generic Unfolding of a Biomimetic Polymer during Force Spectroscopy
- Development and applications of Coarse Grained models for RNA
- Theoretical Perspectives on Protein Folding