Principal-components analysis of shape fluctuations of single DNA molecules
Author(s) -
Adam E. Cohen,
W. E. Moerner
Publication year - 2007
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.0610396104
Subject(s) - biomolecule , thermal fluctuations , brownian motion , nonlinear system , physics , brownian dynamics , chemical physics , statistical physics , polymer , molecule , measure (data warehouse) , dna , electrokinetic phenomena , molecular biophysics , biological system , range (aeronautics) , classical mechanics , chemistry , nanotechnology , quantum mechanics , materials science , nuclear magnetic resonance , biology , biochemistry , database , computer science , composite material
Thermal fluctuations agitate molecules in solution over a broad range of times and distances. By passively watching the shape fluctuations of a thermally driven biomolecule, one can infer properties of the underlying interactions that determine the motion. We applied this concept to single molecules of fluorescently labeled lambda-DNA, a key model system for polymer physics. In contrast to most other single-molecule DNA experiments, we examined the unstretched, equilibrium state of DNA by using an anti-Brownian electrokinetic trap to confine the center of mass of the DNA without perturbing its internal dynamics. We analyze the long-wavelength conformational normal modes, calculate their spring constants, and measure linear and nonlinear couplings between modes. The modes show strong signs of nonlinear hydrodynamics, a feature of the underlying equations of polymer dynamics that has not previously been reported and is neglected in the widely used Rouse and Zimm approximations.
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