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Force-driven separation of short double-stranded DNA.


ABSTRACT: Short double-stranded DNA is used in a variety of nanotechnological applications, and for many of them, it is important to know for which forces and which force loading rates the DNA duplex remains stable. In this work, we develop a theoretical model that describes the force-dependent dissociation rate for DNA duplexes tens of basepairs long under tension along their axes ("shear geometry"). Explicitly, we set up a three-state equilibrium model and apply the canonical transition state theory to calculate the kinetic rates for strand unpairing and the rupture-force distribution as a function of the separation velocity of the end-to-end distance. Theory is in excellent agreement with actual single-molecule force spectroscopy results and even allows for the prediction of the rupture-force distribution for a given DNA duplex sequence and separation velocity. We further show that for describing double-stranded DNA separation kinetics, our model is a significant refinement of the conventionally used Bell-Evans model.

SUBMITTER: Ho D 

PROVIDER: S-EPMC2793367 | biostudies-literature | 2009 Dec

REPOSITORIES: biostudies-literature

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Force-driven separation of short double-stranded DNA.

Ho Dominik D   Zimmermann Julia L JL   Dehmelt Florian A FA   Steinbach Uta U   Erdmann Matthias M   Severin Philip P   Falter Katja K   Gaub Hermann E HE  

Biophysical journal 20091201 12


Short double-stranded DNA is used in a variety of nanotechnological applications, and for many of them, it is important to know for which forces and which force loading rates the DNA duplex remains stable. In this work, we develop a theoretical model that describes the force-dependent dissociation rate for DNA duplexes tens of basepairs long under tension along their axes ("shear geometry"). Explicitly, we set up a three-state equilibrium model and apply the canonical transition state theory to  ...[more]

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