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Expanding the CRISPR Toolbox in Zebrafish for Studying Development and Disease

机译:扩展斑马鱼中的CRISPR工具箱以研究发育和疾病

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摘要

The study of model organisms has revolutionized our understanding of the mechanisms underlying normal development, adult homeostasis, and human disease. Much of what we know about gene function in model organisms (and its application to humans) has come from gene knockouts: the ability to show analogous phenotypes upon gene inactivation in animal models. The zebrafish (Danio rerio) has become a popular model organism for many reasons, including the fact that it is amenable to various forms of genetic manipulation. The RNA-guided CRISPR/Cas9-mediated targeted mutagenesis approaches have provided powerful tools to manipulate the genome toward developing new disease models and understanding the pathophysiology of human diseases. CRISPR-based approaches are being used for the generation of both knockout and knock-in alleles, and also for applications including transcriptional modulation, epigenome editing, live imaging of the genome, and lineage tracing. Currently, substantial effort is being made to improve the specificity of Cas9, and to expand the target coverage of the Cas9 enzymes. Novel types of naturally occurring CRISPR systems [Cas12a (Cpf1); engineered variants of Cas9, such as xCas9 and SpCas9-NG], are being studied and applied to genome editing. Since the majority of pathogenic mutations are single point mutations, development of base editors to convert C:G to T:A or A:T to G:C has further strengthened the CRISPR toolbox. In this review, we provide an overview of the increasing number of novel CRISPR-based tools and approaches, including lineage tracing and base editing.
机译:对模型生物的研究彻底改变了我们对正常发育,成人体内稳态和人类疾病的潜在机制的理解。我们对模型生物中的基因功能(及其在人类中的应用)了解的大部分内容都来自基因敲除:在动物模型中基因失活后能够显示类似表型的能力。斑马鱼(Danio rerio)已成为流行的模型生物,其原因有很多,其中包括可以接受各种形式的基因操作的事实。 RNA引导的CRISPR / Cas9介导的靶向诱变方法提供了强大的工具,可操纵基因组以开发新的疾病模型并了解人类疾病的病理生理学。基于CRISPR的方法被用于产生敲除和敲入等位基因,还用于转录调控,表观基因组编辑,基因组实时成像和谱系追踪等应用。当前,人们正在做出很大的努力来提高Cas9的特异性,并扩大Cas9酶的靶标覆盖范围。新型的天然CRISPR系统[Cas12a(Cpf1);目前正在研究Cas9的工程变体,例如xCas9和SpCas9-NG],并将其应用于基因组编辑。由于大多数致病突变是单点突变,因此将C:G转换为T:A或将A:T转换为G:C的碱基编辑器的开发进一步增强了CRISPR工具箱。在这篇综述中,我们概述了越来越多的基于CRISPR的新颖工具和方法,包括沿袭追踪和碱基编辑。

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