Schlaeppi Anjalie, Graves Alyssa, Weber Michael, Huisken Jan
Morgridge Institute for Research, Madison, WI;
Morgridge Institute for Research, Madison, WI.
J Vis Exp. 2021 Aug 13(174). doi: 10.3791/62741.
Embryonic cardiac research has greatly benefited from advances in fast in vivo light sheet fluorescence microscopy (LSFM). Combined with the rapid external development, tractable genetics, and translucency of the zebrafish, Danio rerio, LSFM has delivered insights into cardiac form and function at high spatial and temporal resolution without significant phototoxicity or photobleaching. Imaging of beating hearts challenges existing sample preparation and microscopy techniques. One needs to maintain a healthy sample in a constricted field of view and acquire ultrafast images to resolve the heartbeat. Here we describe optimized tools and solutions to study the zebrafish heart in vivo. We demonstrate the applications of bright transgenic lines for labeling the cardiac constituents and present novel gentle embedding and immobilization techniques that avoid developmental defects and changes in heart rate. We also propose a data acquisition and analysis pipeline adapted to cardiac imaging. The entire workflow presented here focuses on zebrafish embryonic heart imaging but can also be applied to various other samples and experiments.
胚胎心脏研究极大地受益于快速活体光片荧光显微镜(LSFM)技术的进步。结合斑马鱼(Danio rerio)快速的外部发育、易于操作的遗传学特性以及透明性,LSFM能够在高空间和时间分辨率下深入了解心脏的形态和功能,且不会产生明显的光毒性或光漂白现象。对跳动心脏进行成像对现有的样品制备和显微镜技术提出了挑战。需要在狭窄的视野中维持样品的健康状态,并获取超快图像以解析心跳。在此,我们描述了用于体内研究斑马鱼心脏的优化工具和解决方案。我们展示了用于标记心脏成分的明亮转基因品系的应用,并介绍了新颖的温和包埋和固定技术,这些技术可避免发育缺陷和心率变化。我们还提出了一种适用于心脏成像的数据采集和分析流程。这里介绍的整个工作流程主要针对斑马鱼胚胎心脏成像,但也可应用于各种其他样品和实验。