Hulme S Elizabeth, Shevkoplyas Sergey S, Apfeld Javier, Fontana Walter, Whitesides George M
Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford St., Cambridge, MA 02141, USA.
Lab Chip. 2007 Nov;7(11):1515-23. doi: 10.1039/b707861g. Epub 2007 Aug 16.
This paper describes the fabrication of a microfluidic device for rapid immobilization of large numbers of live C. elegans for performing morphological analysis, microsurgery, and fluorescence imaging in a high-throughput manner. The device consists of two principal elements: (i) an array of 128 wedge-shaped microchannels, or clamps, which physically immobilize worms, and (ii) a branching network of distribution channels, which deliver worms to the array. The flow of liquid through the device (driven by a constant pressure difference between the inlet and the outlet) automatically distributes individual worms into each clamp. It was possible to immobilize more than 100 worms in less than 15 min. The immobilization process was not damaging to the worms: following removal from the array of clamps, worms lived typical lifespans and reproduced normally. The ability to monitor large numbers of immobilized worms easily and in parallel will enable researchers to investigate physiology and behavior in large populations of C. elegans.
本文描述了一种微流控装置的制造方法,该装置用于快速固定大量活的秀丽隐杆线虫,以便以高通量方式进行形态分析、显微手术和荧光成像。该装置由两个主要部分组成:(i)一个由128个楔形微通道或夹具组成的阵列,用于物理固定线虫;(ii)一个分布通道的分支网络,用于将线虫输送到该阵列。液体通过该装置的流动(由入口和出口之间的恒定压差驱动)自动将单个线虫分配到每个夹具中。在不到15分钟的时间内可以固定100多条线虫。固定过程对线虫没有损害:从夹具阵列中取出后,线虫的寿命正常,繁殖也正常。能够轻松且并行地监测大量固定的线虫,将使研究人员能够对线虫的大量群体进行生理学和行为研究。