Dong Li, Cornaglia Matteo, Lehnert Thomas, Gijs Martin A M
Laboratory of Microsystems, École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.
Lab Chip. 2016 Feb 7;16(3):574-85. doi: 10.1039/c5lc01328c.
The roundworm Caenorhabditis elegans (C. elegans) is a powerful model organism for addressing fundamental biological questions related to human disease and aging. Its life cycle consists of an embryo stage, four larval stages that can be clearly distinguished by size and different morphological features, and adulthood. Many worm-based bio-assays require stage- or age-synchronized worm populations, for example for studying the life cycle and aging of worms under different pharmacological conditions or to avoid misinterpretation of results due to overlap of stage-specific response in general. Here, we present a new microfluidic approach for size-dependent sorting of C. elegans nematodes on-chip. We take advantage of the external pressure-deformable profile of polydimethylsiloxane (PDMS) transfer channels that connect two on-chip worm chambers. The pressure-controlled effective cross-section of these channels creates adjustable filter structures that can be easily tuned for a specific worm sorting experiment, without changing the design parameters of the device itself. By optimizing the control pressure settings, we can extract larvae of a specific development stage from a mixed worm culture with an efficiency close to 100% and with a throughput of up to 3.5 worms per second. Our approach also allows us to generate mixed populations of larvae of adjacent stages or to adjust their ratio directly in the microfluidic chamber. Moreover, using the same device, we demonstrated extraction of embryos from adult worm populations for subsequent culture of accurately age-synchronized nematode populations or embryo-based assays. Considering that our sorting device is merely based on geometrical parameters and operated by simple fluidic and pressure control, we believe that it has strong potential for use in advanced, automated, microfluidic C. elegans-based assay platforms.
蛔虫秀丽隐杆线虫是一种强大的模式生物,可用于解决与人类疾病和衰老相关的基本生物学问题。其生命周期包括胚胎阶段、四个幼虫阶段(可根据大小和不同形态特征清晰区分)以及成虫阶段。许多基于线虫的生物测定需要阶段或年龄同步的线虫群体,例如用于研究不同药理条件下线虫的生命周期和衰老,或者总体上避免因阶段特异性反应重叠而导致结果误解。在此,我们展示了一种用于在芯片上按大小对线虫秀丽隐杆线虫进行分选的新型微流控方法。我们利用连接两个芯片上线虫腔室的聚二甲基硅氧烷(PDMS)转移通道的外部压力可变形轮廓。这些通道的压力控制有效横截面创建了可调节的过滤结构,可轻松针对特定的线虫分选实验进行调整,而无需更改设备本身的设计参数。通过优化控制压力设置,我们可以从混合线虫培养物中提取特定发育阶段的幼虫,效率接近100%,通量高达每秒3.5条线虫。我们的方法还使我们能够在微流控腔室中生成相邻阶段幼虫的混合群体或直接调整它们的比例。此外,使用同一设备,我们展示了从成虫群体中提取胚胎,用于随后培养精确年龄同步的线虫群体或基于胚胎的测定。鉴于我们的分选设备仅基于几何参数,并通过简单的流体和压力控制操作,我们认为它在先进的、自动化微流控线虫测定平台中有很强的应用潜力。