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首页> 外文期刊>Macromolecules >Contraction and Tumbling Dynamics of DNA in Shear Flows under Confinement Induced by Transverse Viscoelastic Forces
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Contraction and Tumbling Dynamics of DNA in Shear Flows under Confinement Induced by Transverse Viscoelastic Forces

机译:横向粘弹力诱导的剪切流动中DNA的收缩和翻滚动态

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摘要

The dynamics of single DNA molecules conveyed in a viscoelastic fluid flow with an opposing electrophoretic force are investigated by fluorescence microscopy. For balanced hydrodynamic and electrophoretic forces, DNA is confined near the walls with a much smaller elongation than in bulk shear flows. Furthermore, we observe that DNA extension is characterized by intermittent fluctuations, the characteristic time scale of which depends on the flow velocity. A model based on Rouse dynamics explains the contraction of the molecule by the coupling of monomer motion in the transverse and longitudinal directions to the flow induced by transverse viscoelastic forces. Using simulations, we suggest that the occurrence of intermittent fluctuations is analogous to tumbling dynamics characterized by the cyclic spooling motion of end monomers about the molecule center of mass.
机译:通过荧光显微镜研究在粘弹性流体中输送的单个DNA分子的动态进行研究。 对于平衡的流体动力学和电泳力,DNA局限于壁附近,其伸长率小得多,而不是体积剪切流量。 此外,我们观察到DNA延伸的特征在于间歇波动,其特征时间尺度取决于流速。 基于ROUES动力学的模型解释了分子通过横向和纵向方向上的单体运动耦合到由横向粘弹性引起的流动的耦合来解释分子的收缩。 使用模拟,我们建议发生间歇波动的发生类似于扭曲动态,其特征在于围绕分子质量围绕末端单体的环状旋转运动。

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