FOM Institute AMOLF, Science Park 104, Amsterdam 1098 XG, The Netherlands.
Nat Commun. 2016 Aug 25;7:12500. doi: 10.1038/ncomms12500.
We present a microscopy technique that enables long-term time-lapse microscopy at single-cell resolution in moving and feeding Caenorhabditis elegans larvae. Time-lapse microscopy of C. elegans post-embryonic development is challenging, as larvae are highly motile. Moreover, immobilization generally leads to rapid developmental arrest. Instead, we confine larval movement to microchambers that contain bacteria as food, and use fast image acquisition and image analysis to follow the dynamics of cells inside individual larvae, as they move within each microchamber. This allows us to perform fluorescence microscopy of 10-20 animals in parallel with 20 min time resolution. We demonstrate the power of our approach by analysing the dynamics of cell division, cell migration and gene expression over the full ∼48 h of development from larva to adult. Our approach now makes it possible to study the behaviour of individual cells inside the body of a feeding and growing animal.
我们提出了一种显微镜技术,能够在移动和进食的秀丽隐杆线虫幼虫中以单细胞分辨率进行长期延时显微镜观察。对秀丽隐杆线虫胚胎后发育进行延时显微镜观察具有挑战性,因为幼虫非常活跃。此外,固定通常会导致快速的发育停滞。相反,我们将幼虫的运动限制在包含细菌作为食物的微室中,并使用快速图像采集和图像分析来跟踪单个幼虫内部细胞的动态,因为它们在每个微室中移动。这使我们能够以 20 分钟的时间分辨率并行对 10-20 只动物进行荧光显微镜观察。我们通过分析从幼虫到成虫发育过程中约 48 小时内细胞分裂、细胞迁移和基因表达的动态,证明了我们方法的有效性。我们的方法现在可以研究在进食和生长的动物体内单个细胞的行为。