首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Effects of embedded sub-micron pillar arrays in microfluidic channels on large DNA electrophoresis.
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Effects of embedded sub-micron pillar arrays in microfluidic channels on large DNA electrophoresis.

机译:微流体通道中嵌入的亚微米柱阵列对大型DNA电泳的影响。

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摘要

A study of the influences of embedding artificial structures in a microfluidic device for CE with a free buffer solution is presented. Compared with conventional slab-gel electrophoresis, three major additional effects on the overall system performance are identified when sub-micron pillar arrays are integrated into a standard CE microsystem. Since DNA molecules have to migrate in-between and interact with the pillars, pillar geometry is first demonstrated to have a direct impact on the DNA motion pattern. Electric field re-distribution is another inevitable outcome when features of sub-micron dimensions are placed inside a microchannel. This effect is verified by a numerical simulation tool. Furthermore, the integration of the closely packed sub-micron structures dramatically increases the surface to volume ratios in the microfluidic device and therefore generates a large EOF. The consequence of these additional influences implies a complexity in the measured DNA velocity and indicates that careful considerations have to be taken when these devices are used for DNA electrokinetics study or electrophoresis theory re-examination.
机译:提出了在自由缓冲溶液中将人工结构嵌入微流体装置中对CE的影响的研究。与传统的平板凝胶电泳相比,将亚微米柱阵列集成到标准CE微系统中后,可以确定对系统总体性能的三个主要附加影响。由于DNA分子必须在它们之间迁移并与柱相互作用,因此首先证明了柱的几何形状对DNA运动模式有直接影响。当将亚微米尺寸的特征放置在微通道内部时,电场重新分布是另一个不可避免的结果。此效果已通过数值模拟工具验证。此外,紧密堆积的亚微米结构的集成极大地增加了微流体装置中的表面与体积之比,因此产生大的EOF。这些额外影响的结果意味着所测DNA速度的复杂性,并表明当将这些设备用于DNA电动学研究或电泳理论重新检查时,必须谨慎考虑。

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