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Construction of microscale structures in enclosed microfluidic networks by using a magnetic beads based method

机译:基于磁珠的方法在封闭的微流体网络中构建微尺度结构

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摘要

A large number of microscale structures have been used to elaborate flowing control or complex biological and chemical reaction on microfluidic chips. However, it is still inconvenient to fabricate microstructures with different heights (or depths) on the same substrate. These kinds of microstructures can be fabricated by using the photolithography and wet-etching method step by step, but involves time-consuming design and fabrication process, as well as complicated alignment of different masters. In addition, few existing methods can be used to perform fabrication within enclosed microfluidic networks. It is also difficult to change or remove existing microstructures within these networks. In this study, a magnetic-beads-based approach is presented to build microstructures in enclosed microfluidic networks. Electromagnetic field generated by microfabricated conducting wires (coils) is used to manipulate and trap magnetic beads on the bottom surface of a microchannel. These trapped beads are accumulated to form a microscale pile with desired shape, which can adjust liquid flow, dock cells, modify surface, and do some other things as those fabricated microstructures. Once the electromagnetic field is changed, trapped beads may form new shapes or be removed by a liquid flow. Besides being used in microfabrication, this magnetic-beads-based method can be used for novel microfluidic manipulation. It has been validated by forming microscale dam structure for cell docking and modified surface for cell patterning, as well as guiding the growth of neurons.
机译:大量的微尺度结构已被用于完善微流体芯片上的流动控制或复杂的生物和化学反应。然而,在同一基板上制造具有不同高度(或深度)的微结构仍然不方便。可以通过使用光刻和湿蚀刻方法逐步制造这些类型的微结构,但是涉及耗时的设计和制造过程,以及不同母版的复杂对齐。另外,很少有现有方法可用于在封闭的微流体网络内执行制造。改变或去除这些网络中现有的微结构也是困难的。在这项研究中,提出了一种基于磁珠的方法来构建封闭的微流体网络中的微结构。由微细加工的导线(线圈)产生的电磁场用于操纵和捕获微通道底面上的磁珠。这些捕获的珠粒会聚在一起,形成具有所需形状的微型桩,该桩可以调节液体流量,停靠细胞,修饰表面并做其他一些与制造的微结构一样的事情。一旦电磁场改变,被困的珠子可能会形成新的形状或被液流清除。除了用于微加工之外,这种基于磁珠的方法还可以用于新型微流控。它已通过形成用于细胞对接的微型水坝结构和用于细胞构图的修饰表面以及引导神经元的生长而得到验证。

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