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Single molecule visualization of DNA in the nonhomogeneous shear flow in a microchannel.

机译:微通道中非均匀剪切流中DNA的单分子可视化。

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The dynamics of individual DNA molecules were analyzed under the nonhomogeneous shear flow in a rectangular microchannel. The effects of a complex flow field on individual molecular behavior have never before been experimentally studied. Understanding the specific behavior of complex fluids in flow can lead to enhanced control of applications from synthetic polymer coatings to microfluidics and DNA microarrays.; The molecular dynamics were measured though fluorescence microscopy with digital image acquisition. The flow channel, which was plasma etched into a silicon wafer for precise control of features, allowed for visualization of molecules in the plane defined by the velocity and velocity gradient.; The extension of each DNA molecule in the ultra-dilute solution was measured in flow as a function of its position in the channel, which was then related to the Weissenberg number (Wi = lambdagamma). Wi values ranging from 0 to 30 were simultaneously studied in this work. Even at relatively high Wi, the molecules stretched to less than 50% of their full contour length because shear flow is a combination of elongation and rotation. The combination of these two forces caused partially extended molecules to tumble onto themselves before reaching maximum extension. These results were found to be in good agreement with data previously acquired for molecules in homogeneous shear flow.; The molecules were not evenly distributed across the channel width or depth while flowing. Regions devoid of molecules extended 7 mum from each wall due to hydrodynamic interactions between the DNA molecules and the walls of the channel. Molecules also moved away from the centerline of the channel in both width and depth due to normal stresses. After cessation of flow, the depletion region in the middle of the channel disappeared and the width of the depletion regions adjacent to the walls was reduced to 4 mum because weaker static boundary layer effects replaced the flow-induced hydrodynamic interactions. This research brings us closer to fully understanding how individual molecules in solution respond to nonhomogeneous shear flow.
机译:在矩形微通道中非均匀剪切流下分析单个DNA分子的动力学。复杂的流场对单个分子行为的影响从未进行过实验研究。了解复杂流体在流动中的特定行为可以导致对从合成聚合物涂层到微流体和DNA微阵列的应用的增强控制。通过具有数字图像采集的荧光显微镜测量分子动力学。将该流道等离子蚀刻到硅晶片中以精确控制特征,从而可以在由速度和速度梯度定义的平面中观察分子。测量每个DNA分子在超稀溶液中的延伸量,作为其在通道中位置的函数,然后与魏森伯格数(Wi = lambdagamma)相关。在这项工作中,同时研究了范围从0到30的Wi值。即使在相对较高的Wi下,由于剪切流是伸长和旋转的组合,因此分子拉伸到其整个轮廓长度的不到50%。这两个力的结合导致部分延伸的分子在达到最大延伸之前就掉落到自身上。发现这些结果与先前在均相剪切流中获得的分子数据非常吻合。在流动时,分子在通道宽度或深度上分布不均匀。由于DNA分子与通道壁之间的流体动力相互作用,没有分子的区域从每壁延伸7毫米。由于法向应力,分子的宽度和深度也从通道的中心线移开。停止流动后,通道中部的耗尽区消失,与壁相邻的耗尽区的宽度减小到4μm,这是因为较弱的静态边界层效应代替了流动引起的流体动力相互作用。这项研究使我们更加充分地了解溶液中的单个分子如何响应非均匀剪切流。

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