Poureetezadi Shahram Jevin, Donahue Eric K, Wingert Rebecca A
Department of Biological Sciences, University of Notre Dame.
Department of Biological Sciences, University of Notre Dame;
J Vis Exp. 2014 Nov 8(93):e52063. doi: 10.3791/52063.
Zebrafish have become a widely used model organism to investigate the mechanisms that underlie developmental biology and to study human disease pathology due to their considerable degree of genetic conservation with humans. Chemical genetics entails testing the effect that small molecules have on a biological process and is becoming a popular translational research method to identify therapeutic compounds. Zebrafish are specifically appealing to use for chemical genetics because of their ability to produce large clutches of transparent embryos, which are externally fertilized. Furthermore, zebrafish embryos can be easily drug treated by the simple addition of a compound to the embryo media. Using whole-mount in situ hybridization (WISH), mRNA expression can be clearly visualized within zebrafish embryos. Together, using chemical genetics and WISH, the zebrafish becomes a potent whole organism context in which to determine the cellular and physiological effects of small molecules. Innovative advances have been made in technologies that utilize machine-based screening procedures, however for many labs such options are not accessible or remain cost-prohibitive. The protocol described here explains how to execute a manual high-throughput chemical genetic screen that requires basic resources and can be accomplished by a single individual or small team in an efficient period of time. Thus, this protocol provides a feasible strategy that can be implemented by research groups to perform chemical genetics in zebrafish, which can be useful for gaining fundamental insights into developmental processes, disease mechanisms, and to identify novel compounds and signaling pathways that have medically relevant applications.
由于斑马鱼与人类在基因上有相当程度的保守性,它们已成为一种广泛用于研究发育生物学基础机制和人类疾病病理学的模式生物。化学遗传学需要测试小分子对生物过程的影响,并且正成为一种流行的转化研究方法,用于识别治疗性化合物。斑马鱼特别适合用于化学遗传学研究,因为它们能够产生大量体外受精的透明胚胎。此外,通过简单地向胚胎培养基中添加化合物,就可以轻松地对斑马鱼胚胎进行药物处理。使用全胚胎原位杂交(WISH),可以在斑马鱼胚胎中清晰地观察到mRNA的表达。综合使用化学遗传学和WISH,斑马鱼成为一个强大的整体生物体模型,可用于确定小分子的细胞和生理效应。利用基于机器的筛选程序的技术已经取得了创新性进展,然而对于许多实验室来说,这些选择并不容易获得或成本过高。这里描述的方案解释了如何执行手动高通量化学遗传筛选,该筛选需要基本资源,并且可以由一个人或一个小团队在有效的时间内完成。因此,该方案提供了一种可行的策略,研究小组可以采用该策略在斑马鱼中进行化学遗传学研究,这对于深入了解发育过程、疾病机制以及识别具有医学相关应用的新型化合物和信号通路可能是有用的。