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单分子布朗运动的保守线性动力学。

Conserved linear dynamics of single-molecule Brownian motion.

机构信息

Biological and Environmental Sciences and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.

出版信息

Nat Commun. 2017 Jun 6;8:15675. doi: 10.1038/ncomms15675.

Abstract

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.

摘要

在大于分子尺寸的长度尺度上,均匀流体中的大分子扩散被视为随机过程。在这个区域,分子的均方位移(MSD)随时间线性增加。在这里,我们表明,通过相对于晶格参考系来描述分子运动,可以定量地量化 MSD 分析无法检测到的该区域中 DNA 分子的非随机运动。我们的晶格占有率分析揭示了 DNA 的出乎意料的亚运动模式,这些模式偏离了线性扩散区域中预期的随机运动。我们证明,这些亚运动模式之间的微妙相互作用导致 DNA 的整体扩散运动似乎符合线性区域。我们的结果表明,大分子的明显随机运动可能受到仅通过其相对运动才能检测到的非随机动力学的控制。我们的分析方法应该有助于广泛了解具有基本重要性的扩散过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f1fd/5467176/caeebddfb904/ncomms15675-f1.jpg

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