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Conserved linear dynamics of single-molecule Brownian motion
Author(s) -
Maged F. Serag,
Satoshi Habuchi
Publication year - 2017
Publication title -
nature communications
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.559
H-Index - 365
ISSN - 2041-1723
DOI - 10.1038/ncomms15675
Subject(s) - brownian motion , mean squared displacement , physics , statistical physics , diffusion , displacement (psychology) , anomalous diffusion , dynamics (music) , motion (physics) , diffusion process , classical mechanics , molecular dynamics , computer science , quantum mechanics , psychology , knowledge management , innovation diffusion , acoustics , psychotherapist
Macromolecular diffusion in homogeneous fluid at length scales greater than the size of the molecule is regarded as a random process. The mean-squared displacement (MSD) of molecules in this regime increases linearly with time. Here we show that non-random motion of DNA molecules in this regime that is undetectable by the MSD analysis can be quantified by characterizing the molecular motion relative to a latticed frame of reference. Our lattice occupancy analysis reveals unexpected sub-modes of motion of DNA that deviate from expected random motion in the linear, diffusive regime. We demonstrate that a subtle interplay between these sub-modes causes the overall diffusive motion of DNA to appear to conform to the linear regime. Our results show that apparently random motion of macromolecules could be governed by non-random dynamics that are detectable only by their relative motion. Our analytical approach should advance broad understanding of diffusion processes of fundamental relevance.

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