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Microfluidic Technologies for High Throughput Screening Through Sorting and On-Chip Culture of C. elegans

机译:通过秀丽隐杆线虫的分选和片上培养进行高通量筛选的微流控技术

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摘要

The nematode is a powerful model organism that has been widely used to study molecular biology, cell development, neurobiology, and aging. Despite their use for the past several decades, the conventional techniques for growth, imaging, and behavioral analysis of can be cumbersome, and acquiring large data sets in a high-throughput manner can be challenging. Developments in microfluidic “lab-on-a-chip” technologies have improved studies of by increasing experimental control and throughput. Microfluidic features such as on-chip control layers, immobilization channels, and chamber arrays have been incorporated to develop increasingly complex platforms that make experimental techniques more powerful. Genetic and chemical screens are performed on to determine gene function and phenotypic outcomes of perturbations, to test the effect that chemicals have on health and behavior, and to find drug candidates. In this review, we will discuss microfluidic technologies that have been used to increase the throughput of genetic and chemical screens in . We will discuss screens for neurobiology, aging, development, behavior, and many other biological processes. We will also discuss robotic technologies that assist in microfluidic screens, as well as alternate platforms that perform functions similar to microfluidics.
机译:线虫是一种功能强大的模型生物,已广泛用于研究分子生物学,细胞发育,神经生物学和衰老。尽管在过去的几十年中一直使用它们,但是用于生长,成像和行为分析的常规技术可能很繁琐,并且以高通量方式获取大数据集可能具有挑战性。微流体“芯片实验室”技术的发展通过增加实验控制和通量来改善对的研究。诸如片上控制层,固定通道和腔室阵列之类的微流体功能已被纳入,以开发日益复杂的平台,从而使实验技术更加强大。进行遗传和化学筛选,以确定基因功能和干扰的表型结果,测试化学物质对健康和行为的影响,并寻找候选药物。在这篇综述中,我们将讨论微流控技术,这些技术已被用于提高遗传和化学筛选的通量。我们将讨论神经生物学,衰老,发育,行为和许多其他生物学过程的屏幕。我们还将讨论辅助微流体筛查的机器人技术,以及执行与微流体类似功能的替代平台。

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