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Bandpass Filtering of DNA Elastic Modes Using Confinement and Tension

机译:使用限制和张力对DNA弹性模式进行带通滤波

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摘要

During a variety of biological and technological processes, biopolymers are simultaneously subject to both confinement and external forces. Although significant efforts have gone into understanding the physics of polymers that are only confined, or only under tension, little work has been done to explore the effects of the interplay of force and confinement. Here, we study the combined effects of stretching and confinement on a polymer's configurational freedom. We measure the elastic response of long double-stranded DNA molecules that are partially confined to thin, nanofabricated slits. We account for the data through a model in which the DNA's short-wavelength transverse elastic modes are cut off by applied force and the DNA's bending stiffness, whereas long-wavelength modes are cut off by confinement. Thus, we show that confinement and stretching combine to permit tunable bandpass filtering of the elastic modes of long polymers.
机译:在各种生物学和技术过程中,生物聚合物同时受到约束和外力作用。尽管人们已经做出了巨大的努力来理解仅受约束或仅在受拉状态下的聚合物的物理性质,但几乎没有做任何工作来探索力与约束相互作用的影响。在这里,我们研究了拉伸和约束对聚合物构型自由度的综合影响。我们测量长双链DNA分子的弹性响应,该分子部分限制在薄的,纳米加工的缝隙中。我们通过一个模型来解释数据,在该模型中,通过施加力和DNA的弯曲刚度来截断DNA的短波横向弹性模,而通过约束来截断长波的模态。因此,我们表明限制和拉伸相结合,可以对长聚合物的弹性模态进行可调节的带通滤波。

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