Division of Mechanical Engineering, School of Mechanical, Aerospace and Systems Engineering, Korea Advanced Institute of Science and Technology, 335 Gwahangno, Yuseng-gu, Daejeon 305-701, Republic of Korea.
Lab Chip. 2012 Oct 21;12(20):4128-34. doi: 10.1039/c2lc40209b.
Caenorhabditis elegans (C. elegans) is a model organism widely utilized in various fundamental studies in developmental, neural and behavioural biology. The worm features four distinct larval stages, and many research questions are stage-specific; therefore, it is necessary to sort worms by their developmental stages, which are typically represented by different size ranges. However, manually synchronizing large populations of worms is time-consuming and labour-intensive, and the commercially available automated sorter is massive and expensive. Realizing the need for a cost-effective and simple micro-platform for sorting, we report an inexpensive and novel method to accomplish this goal. The proposed micro-platform features hexagonally arrayed microstructures with geometric dimensions optimized for the maximum motility of the worms based on their sizes. In each of the optimized micro-structured platforms, only the worms with the targeted size swim continuously with the maximum undulation frequency. Additionally, the persistent and directed movement of the worms can be achieved by applying an electric field along the channel. Based on the optimally spaced microstructures and the electrotaxis behaviour of the worms, we demonstrate the feasibility of a sorting strategy of C. elegans based on their size-dependent swimming behaviour. This micro-platform can also be used for other applications, such as behavioural studies of normal and locomotion-defective mutant worms in complex structures.
秀丽隐杆线虫(C. elegans)是一种广泛应用于发育、神经和行为生物学等基础研究的模式生物。该线虫具有四个明显的幼虫阶段,许多研究问题都是特定于阶段的;因此,有必要根据其发育阶段对线虫进行分类,这些阶段通常代表不同的大小范围。然而,手动对大量线虫进行同步化是耗时且劳动密集型的,而商业上可用的自动分拣器体积庞大且昂贵。鉴于需要一种经济高效且简单的微平台来进行分拣,我们报告了一种实现这一目标的廉价且新颖的方法。所提出的微平台具有六边形排列的微结构,其几何尺寸经过优化,可根据线虫的大小实现最大的运动能力。在每个优化的微结构平台中,只有目标大小的线虫以最大的波动频率连续游动。此外,通过沿通道施加电场,可以实现线虫的持续和定向运动。基于优化的微结构和线虫的电趋性行为,我们展示了基于线虫大小相关游泳行为的分选策略的可行性。该微平台还可用于其他应用,例如在复杂结构中对线虫的正常和运动缺陷突变体进行行为研究。