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Microfluidics-enabled phenotyping of a whole population of C. elegans worms over their embryonic and post-embryonic development at single-organism resolution

机译:微流控技术使线虫蠕虫的整个表型在单一生物分辨率下在其胚胎发育和胚胎后发育

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摘要

The organism Caenorhabditis elegans is a performant model system for studying human biological processes and diseases, but until now all phenome data are produced as population-averaged read-outs. Monitoring of individual responses to drug treatments would however be more informative. Here, a new strategy to track different phenotypic traits of individual C. elegans nematodes throughout their full life-cycle—i.e., embryonic and post-embryonic development, until adulthood onset, differently from life-span—is presented. In an automated fashion, single worms were synchronized, isolated, and cultured from egg to adulthood in a microfluidic device, where their identity was preserved during their whole development. Several phenotypes were monitored and quantified for each animal, resulting in high-content phenome data. Specifically, the method was validated by analyzing the response of C. elegans to doxycycline, an antibiotic fairly well-known to prolong the development and activate mitochondrial stress-response pathways in different species. Interestingly, the obtained extensive single-worm phenome not only confirmed the dramatic doxycycline effect on the worm developmental delay, but more importantly revealed subtle yet severe treatment-dependent phenotypes that are representative of minority subgroups and would have otherwise stayed hidden in an averaged dataset. Such heterogeneous response started during the embryonic development, which makes essential having a dedicated chip that allows including this early developmental stage in the drug assay. Our approach would therefore allow elucidating pharmaceutical or therapeutic responses that so far were still being overlooked.
机译:秀丽隐杆线虫是用于研究人类生物学过程和疾病的高性能模型系统,但是直到现在,所有表型数据都是以人口平均读数产生的。然而,监测个体对药物治疗的反应将提供更多信息。在这里,提出了一种新的策略来跟踪线虫个体线虫在其整个生命周期中的不同表型特征,即从胚胎和胚后发育到成年,与寿命不同。以一种自动化的方式,将单个蠕虫在微流控设备中同步,分离并从卵培育到成虫,并在整个发育过程中保留其身份。监测和量化每只动物的几种表型,从而得到高含量的表型数据。具体而言,该方法通过分析秀丽隐杆线虫对强力霉素的反应进行了验证,强力霉素是众所周知的抗生素,可延长不同物种的发育并激活线粒体应激反应途径。有趣的是,获得的广泛的单蠕虫表型不仅证实了对蠕虫发育延迟的显着强力霉素影响,而且更重要的是揭示了微弱但严重的依赖治疗的表型,这些表型代表少数亚组,否则将隐藏在平均数据集中。这种异质性反应是在胚胎发育过程中开始的,这使得拥有专用芯片成为必不可少,该芯片可以将药物研发中的这一早期发育阶段包括在内。因此,我们的方法将允许阐明迄今为止仍被忽视的药物或治疗反应。

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