Glick Yair, Avrahami Dorit, Michaely Efrat, Gerber Doron
The Mina & Everard Goodman Faculty of Life Sciences, The Nanotechnology Institute, Bar-Ilan University.
J Vis Exp. 2012 Aug 23(66):e3849. doi: 10.3791/3849.
Rapidly increasing fields, such as systems biology, require the development and implementation of new technologies, enabling high-throughput and high-fidelity measurements of large systems. Microfluidics promises to fulfill many of these requirements, such as performing high-throughput screening experiments on-chip, encompassing biochemical, biophysical, and cell-based assays. Since the early days of microfluidics devices, this field has drastically evolved, leading to the development of microfluidic large-scale integration. This technology allows for the integration of thousands of micromechanical valves on a single device with a postage-sized footprint (Figure 1). We have developed a high-throughput microfluidic platform for generating in vitro expression of protein arrays (Figure 2) named PING (Protein Interaction Network Generator). These arrays can serve as a template for many experiments such as protein-protein, protein-RNA or protein-DNA interactions. The device consist of thousands of reaction chambers, which are individually programmed using a microarrayer. Aligning of these printed microarrays to microfluidics devices programs each chamber with a single spot eliminating potential contamination or cross-reactivity. Moreover, generating microarrays using standard microarray spotting techniques is also very modular, allowing for the arraying of proteins, DNA, small molecules, and even colloidal suspensions. The potential impact of microfluidics on biological sciences is significant. A number of microfluidics based assays have already provided novel insights into the structure and function of biological systems, and the field of microfluidics will continue to impact biology.
诸如系统生物学等快速发展的领域,需要开发和应用新技术,以实现对大型系统的高通量和高保真测量。微流控技术有望满足其中许多要求,例如在芯片上进行高通量筛选实验,涵盖生化、生物物理和基于细胞的分析。自微流控设备诞生之初,该领域就发生了巨大的演变,推动了微流控大规模集成的发展。这项技术能够在一个邮票大小的单设备上集成数千个微机械阀(图1)。我们开发了一种用于生成蛋白质阵列体外表达的高通量微流控平台(图2),名为PING(蛋白质相互作用网络生成器)。这些阵列可作为许多实验的模板,如蛋白质-蛋白质、蛋白质-RNA或蛋白质-DNA相互作用。该设备由数千个反应腔组成,通过微阵列仪对每个反应腔进行单独编程。将这些打印的微阵列与微流控设备对齐,可对每个腔室进行单点编程,消除潜在的污染或交叉反应。此外,使用标准微阵列点样技术生成微阵列也具有很强的模块化,允许对蛋白质、DNA、小分子甚至胶体悬浮液进行阵列化。微流控技术对生物科学的潜在影响是巨大的。许多基于微流控的分析已经为生物系统的结构和功能提供了新的见解,微流控领域将继续影响生物学。