Apparent persistence length renormalization of bent DNA
- 6 October 2005
- journal article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 72 (4) , 041905
- https://doi.org/10.1103/physreve.72.041905
Abstract
We derive the single molecule equation of state (force-extension relation) for DNA molecules bearing sliding loops and deflection defects. Analytical results are obtained in the large force limit by employing an analogy with instantons in quantum mechanical tunneling problems. The results reveal a remarkable feature of sliding loops--an apparent strong reduction of the persistence length. We generalize these results to several other experimentally interesting situations ranging from rigid DNA-protein loops to the problem of anchoring deflections in atomic force microscopy stretching of semiflexible polymers. Expressions relating the force-extension measurements to the underlying loop or boundary deflection geometry are provided and applied to the case of the gal repressor dimer protein. The theoretical predictions are complemented and quantitatively confirmed by molecular dynamics simulations.Keywords
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This publication has 29 references indexed in Scilit:
- Stretching of macromolecules and proteinsReports on Progress in Physics, 2002
- Elastic rod model of a supercoiled DNA moleculeThe European Physical Journal E, 2000
- Entropic Elasticity of Twist-Storing PolymersMacromolecules, 1998
- Behavior of Supercoiled DNABiophysical Journal, 1998
- Elasticity Model of a Supercoiled DNA MoleculePhysical Review Letters, 1998
- The Elasticity of a Single Supercoiled DNA MoleculeScience, 1996
- Stretching DNAMacromolecules, 1995
- Stiff Chains and Filaments under TensionMacromolecules, 1995
- Entropic Elasticity of λ-Phage DNAScience, 1994
- Direct Mechanical Measurements of the Elasticity of Single DNA Molecules by Using Magnetic BeadsScience, 1992