一种用于刚地弓形虫和刚地弓形虫快速基因组编辑的简化CRISPR/Cas9方法

Journal of biological methods Pub Date : 2020-12-19 eCollection Date: 2020-01-01 DOI:10.14440/jbm.2020.343
Rahel R Winiger, Adrian B Hehl
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引用次数: 4

摘要

刚地弓形虫(T. gondii)和贝斯诺提虫(B.贝斯诺提)是密切相关的球虫寄生虫,属于顶复合体门,包括许多其他重要的人类和牲畜病原体。弓形虫被认为是研究顶复合体细胞生物学的模式生物,主要是因为它易于在多种宿主细胞中繁殖,并且有广泛的遗传工具可用。相反,贝氏贝氏杆菌体外培养系统目前仅存在于感染的急性阶段,并且遗传操作已被证明更具挑战性。近年来,利用可编程CRISPR-associated (Cas)9酶对染色体DNA进行靶向编辑,极大地提高了弓形虫及其相关寄生虫基因操作的范围和准确性,但在贝氏贝氏贝氏体中仍落后。与以前的方法相比,CRISPR/Cas9技术能够引入单点和插入/删除突变,精确整合框架内表位标签,并以更少的时间和成本删除基因。目前在弓形虫中进行crispr介导的基因组编辑的方案依赖于Cas9的组成性或瞬时表达,以及在转染的质粒载体上单独或一起编码的靶向特异性sgRNAs。组成性表达的Cas9具有毒性风险,而瞬时方法既费力又容易出错。在这里,我们提出了一种使用化学合成和修饰的sgRNAs进行质粒载体非依赖性基因组编辑的方案。该方案允许快速和经济高效地产生弓形虫和贝氏贝氏体突变细胞系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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A streamlined CRISPR/Cas9 approach for fast genome editing in Toxoplasma gondii and Besnoitia besnoiti.

Toxoplasma gondii (T. gondii) and Besnoitia besnoiti (B. besnoiti) are closely related coccidian parasites belonging to the phylum Apicomplexa, which comprises many other important pathogens of humans and livestock. T. gondii is considered a model organism for studying the cell biology of Apicomplexa mainly due to the ease of propagation in diverse host cells and the availability of a wide range of genetic tools. Conversely, B. besnoiti in vitro culture systems currently exist only for the acute phase of infection, and genetic manipulation has proven much more challenging. In recent years, the targeted editing of chromosomal DNA by the programmable CRISPR-associated (Cas)9 enzyme has greatly improved the scope and accuracy of genetic manipulation in T. gondii and related parasites but is still lagging in B. besnoiti. The CRISPR/Cas9 technology enables the introduction of single point and insertion/deletion mutations, precise integration of in-frame epitope tags, and deletions of genes at reduced time and cost compared to previous methods. Current protocols for CRISPR-mediated genome editing in T. gondii rely on either constitutive or transient expression of Cas9 as well as target specific sgRNAs encoded separately or together on transfected plasmid vectors. Constitutively expressed Cas9 carries the risk of toxicity, whilst the transient approach is laborious and error-prone. Here we present a protocol for plasmid vector-independent genome-editing using chemically synthesized and modified sgRNAs. This protocol allows for rapid and cost-effective generation of mutant cell lines of T. gondii and B. besnoiti.

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