Brooks Elliott P, Nichols James T
Department of Craniofacial Biology, University of Colorado Anschutz Medical Campus.
Department of Craniofacial Biology, University of Colorado Anschutz Medical Campus;
J Vis Exp. 2017 Sep 1(127):56200. doi: 10.3791/56200.
Zebrafish mutant phenotypes are often incompletely penetrant, only manifesting in some mutants. Interesting phenotypes that inconsistently appear can be difficult to study, and can lead to confounding results. The protocol described here is a straightforward breeding paradigm to increase and decrease penetrance in lethal zebrafish skeletal mutants. Because lethal mutants cannot be selectively bred directly, the classic selective breeding strategy of progeny testing is employed. This method also includes protocols for Kompetitive Allele Specific PCR (KASP) genotyping zebrafish and staining larval zebrafish cartilage and bone. Applying the husbandry strategy described here can increase the penetrance of an interesting skeletal phenotype enabling more reproducible results in downstream applications. In addition, decreasing the mutant penetrance through this selective breeding strategy can reveal the developmental processes that most crucially require the function of the mutated gene. While the skeleton is specifically considered here, we propose that this methodology will be useful for all zebrafish mutant lines.
斑马鱼突变体表型通常不完全显性,仅在一些突变体中表现出来。那些不一致出现的有趣表型可能难以研究,并可能导致混淆的结果。这里描述的方案是一种直接的育种模式,用于增加和降低致死性斑马鱼骨骼突变体的显性率。由于致死性突变体不能直接进行选择性繁殖,因此采用了后代测试的经典选择性育种策略。该方法还包括竞争性等位基因特异性PCR(KASP)对斑马鱼进行基因分型以及对斑马鱼幼体软骨和骨骼进行染色的方案。应用这里描述的饲养策略可以增加有趣骨骼表型的显性率,从而在下游应用中获得更可重复的结果。此外,通过这种选择性育种策略降低突变体显性率可以揭示最关键需要突变基因功能的发育过程。虽然这里特别考虑了骨骼,但我们认为这种方法对所有斑马鱼突变系都将有用。