Williams Antionette L, Bohnsack Brenda L
Department of Ophthalmology and Visual Sciences, Kellogg Eye Center, University of Michigan.
Department of Ophthalmology and Visual Sciences, Kellogg Eye Center, University of Michigan;
J Vis Exp. 2017 Aug 9(126):56214. doi: 10.3791/56214.
Congenital eye and craniofacial anomalies reflect disruptions in the neural crest, a transient population of migratory stem cells that give rise to numerous cell types throughout the body. Understanding the biology of the neural crest has been limited, reflecting a lack of genetically tractable models that can be studied in vivo and in real-time. Zebrafish is a particularly important developmental model for studying migratory cell populations, such as the neural crest. To examine neural crest migration into the developing eye, a combination of the advanced optical techniques of laser scanning microscopy with long wavelength multi-photon fluorescence excitation was implemented to capture high-resolution, three-dimensional, real-time videos of the developing eye in transgenic zebrafish embryos, namely Tg(sox10:EGFP) and Tg(foxd3:GFP), as sox10 and foxd3 have been shown in numerous animal models to regulate early neural crest differentiation and likely represent markers for neural crest cells. Multi-photon time-lapse imaging was used to discern the behavior and migratory patterns of two neural crest cell populations contributing to early eye development. This protocol provides information for generating time-lapse videos during zebrafish neural crest migration, as an example, and can be further applied to visualize the early development of many structures in the zebrafish and other model organisms.
先天性眼和颅面异常反映了神经嵴的发育紊乱,神经嵴是一群短暂迁移的干细胞,可分化为全身多种细胞类型。对神经嵴生物学的了解一直有限,这反映出缺乏可在体内进行实时研究的、具有遗传易处理性的模型。斑马鱼是研究迁移细胞群体(如神经嵴)的一个特别重要的发育模型。为了研究神经嵴向发育中的眼睛的迁移,采用了激光扫描显微镜的先进光学技术与长波长多光子荧光激发相结合的方法,以捕获转基因斑马鱼胚胎(即Tg(sox10:EGFP)和Tg(foxd3:GFP))发育中眼睛的高分辨率三维实时视频,因为在众多动物模型中已表明sox10和foxd3可调节早期神经嵴分化,并且可能代表神经嵴细胞的标志物。多光子延时成像用于识别两个对早期眼睛发育有贡献的神经嵴细胞群体的行为和迁移模式。本方案提供了在斑马鱼神经嵴迁移过程中生成延时视频的信息,例如,并且可进一步应用于可视化斑马鱼和其他模式生物中许多结构的早期发育。