Force unfolding kinetics of RNA using optical tweezers. II. Modeling experiments
arXiv:0707.0662 · doi:10.1529/biophysj.106.094243
Abstract
By exerting mechanical force it is possible to unfold/refold RNA molecules one at a time. In a small range of forces, an RNA molecule can hop between the folded and the unfolded state with force-dependent kinetic rates. Here, we introduce a mesoscopic model to analyze the hopping kinetics of RNA hairpins in an optical tweezers setup. The model includes different elements of the experimental setup (beads, handles and RNA sequence) and limitations of the instrument (time lag of the force-feedback mechanism and finite bandwidth of data acquisition). We investigated the influence of the instrument on the measured hopping rates. Results from the model are in good agreement with the experiments reported in the companion article (1). The comparison between theory and experiments allowed us to infer the values of the intrinsic molecular rates of the RNA hairpin alone and to search for the optimal experimental conditions to do the measurements. We conclude that long handles and soft laser traps represent the best conditions to extract rate estimates that are closest to the intrinsic molecular rates. The methodology and rationale presented here can be applied to other experimental setups and other molecules.
PDF file, 32 pages including 9 figures plus supplementary material
References in corpus (5)
- Verification of the Crooks fluctuation theorem and recovery of RNA folding free energies
- Single-molecule experiments in biological physics: methods and applications
- Force unfolding kinetics of RNA using optical tweezers. I. Effects of experimental variables on measured results
- Forced-unfolding and force-quench refolding of RNA hairpins
- Force dependent fragility in RNA hairpins
Cited by in corpus (22)
- Single-molecule experiments in biological physics: methods and applications
- Force unfolding kinetics of RNA using optical tweezers. I. Effects of experimental variables on measured results
- From mechanical folding trajectories to intrinsic energy landscapes of biopolymers
- Force Dependent Hopping Rates of RNA Hairpins can be Estimated from Accurate Measurement of the Folding Landscapes
- Improving signal-to-noise resolution in single molecule experiments using molecular constructs with short handles
- Dynamic force spectroscopy of DNA hairpins. I. Force kinetics and free energy landscapes
- Optimal work in a harmonic trap with bounded stiffness
- Statistical properties of metastable intermediates in DNA unzipping
- Unveiling the influence of device stiffness in single macromolecule unfolding
- Dynamic force spectroscopy of DNA hairpins. II. Irreversibility and dissipation
- Single-molecule stochastic resonance
- Deconvolution of dynamic mechanical networks
- Force Feedback Effects on Single Molecule Hopping and Pulling Experiments
- Weak temporal signals can synchronize and accelerate the transition dynamics of biopolymers under tension
- Force-Dependent Folding Kinetics of Single Molecules with Multiple Intermediates and Pathways
- Force-induced misfolding in RNA
- Nonequilibrium fluctuations in small systems: From physics to biology
- Spin-oscillator model for DNA/RNA unzipping by mechanical force
- Time correlation functions of equilibrium and nonequilibrium Langevin dynamics: Derivations and numerics using random numbers
- Dynamical modelling of molecular constructions and setups for DNA unzipping
- Information-to-work conversion in single molecule experiments: from discrete to continuous feedback
- Fluctuation theorems with optical tweezers: theory and practice