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Lab-on-a-chip devices for cell biology studies

机译:用于细胞生物学研究的芯片实验室设备

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Microtechnology offers the attractive possibility of modulating the microenvironment of single cells and, for the same price, obtain data at high throughput for a small cost. Microfluidic or "Lab on a Chip" devices, in particular, promise to play a key role for several reasons: 1) the dimensions of microchannels can be comparable to or smaller than a single cell; 2) the unique physicochemical behavior of liquids confined to microenvironments enables new strategies for delivering compounds to cells on a subcellular level; 3) the devices consume small quantities of precious/hazardous reagents (thus reducing cost of operation/disposal); and 4) the can be mass-produced in low-cost, portable units. Not surprisingly, in recent years there has been an eruption of microfluidic implementations of a variety of traditional bioanalysis techniques. I will review the latest efforts of our laboratory in the development of cell-based microdevices for cell biology studies, such as neuromuscular synaptogenesis, axon guidance, and chemotaxis.
机译:微技术提供了一种有吸引力的可能性,可以调节单个细胞的微环境,并以相同的价格以较低的成本获得高吞吐量的数据。尤其是,微流体或“芯片实验室”设备有望发挥关键作用,原因有几个:1)微通道的尺寸可以与单个细胞相比或小于单个细胞; 2)局限于微环境的液体独特的物理化学行为,为将化合物以亚细胞水平递送至细胞提供了新的策略; 3)设备消耗少量的贵重/有害试剂(从而降低了操作/处置成本); 4)可以在低成本,便携式设备中批量生产。毫不奇怪,近年来,已经出现了多种传统生物分析技术的微流体实现方法。我将回顾我们实验室在开发用于细胞生物学研究的基于细胞的微器件(如神经肌肉突触形成,轴突导向和趋化性)方面的最新成果。

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