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Genetic Manipulation of the Toxoplasma gondii Genome by Fosmid Recombineering

机译:Fosmid重组对弓形虫基因组的遗传操纵

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ABSTRACT Apicomplexa are obligate intracellular parasites that cause important diseases in humans and animals. Manipulating the pathogen genome is the most direct way to understand the functions of specific genes in parasite development and pathogenesis. In Toxoplasma gondii , nonhomologous recombination is typically highly favored over homologous recombination, a process required for precise gene targeting. Several approaches, including the use of targeting vectors that feature large flanks to drive site-specific recombination, have been developed to overcome this problem. We have generated a new large-insert repository of T.?gondii genomic DNA that is arrayed and sequenced and covers 95% of all of the parasite’s genes. Clones from this fosmid library are maintained at single copy, which provides a high level of stability and enhances our ability to modify the organism dramatically. We establish a robust recombineering pipeline and show that our fosmid clones can be easily converted into gene knockout constructs in a 4-day protocol that does not require plate-based cloning but can be performed in multiwell plates. We validated this approach to understand gene function in T.?gondii and produced a conditional null mutant for a nucleolar protein belonging to the NOL1/NOP2/SUN family, and we show that this gene is essential for parasite growth. We also demonstrate a powerful complementation strategy in the context of chemical mutagenesis and whole-genome sequencing. This repository is an important new resource that will accelerate both forward and reverse genetic analysis of this important pathogen. IMPORTANCE Toxoplasma gondii is an important genetic model to understand intracellular parasitism. We show here that large-insert genomic clones are effective tools that enhance homologous recombination and allow us to engineer conditional mutants to understand gene function. We have generated, arrayed, and sequenced a fosmid library of T.?gondii genomic DNA in a copy control vector that provides excellent coverage of the genome. The fosmids are maintained in a single-copy state that dramatically improves their stability and allows modification by means of a simple and highly scalable protocol. We show here that modified and unmodified fosmid clones are powerful tools for forward and reverse genetics.
机译:摘要顶叶复合体是专性的细胞内寄生虫,可引起人类和动物的重要疾病。操纵病原体基因组是了解特定基因在寄生虫发育和发病机理中功能的最直接方法。在刚地弓形虫中,非同源重组通常比同源重组更受青睐,同源重组是精确靶向基因的过程。为了克服这个问题,已经开发了几种方法,包括使用具有大侧翼特征的靶向载体来驱动位点特异性重组。我们已经建立了一个新的大插入的T.?gondii基因组DNA储存库,该储存库经过测序和测序,涵盖了95%的所有寄生虫基因。来自该fosmid文库的克隆保持单一拷贝,这提供了高水平的稳定性,并增强了我们显着修饰生物的能力。我们建立了一个强大的重组流程,并表明我们的fosmid克隆可以在4天的实验方案中轻松转换为基因敲除构建体,该方案不需要基于板的克隆,但可以在多孔板上进行。我们验证了这种方法以了解T.gondii中的基因功能,并为属于NOL1 / NOP2 / SUN家族的核仁蛋白产生了条件无效突变体,并且我们证明了该基因对于寄生虫生长至关重要。我们还在化学诱变和全基因组测序的背景下展示了强大的互补策略。该储存库是重要的新资源,将加速对该重要病原体的正向和反向遗传分析。重要信息弓形虫是了解细胞内寄生虫病的重要遗传模型。我们在这里表明,大插入基因组克隆是增强同源重组并允许我们设计条件突变体以了解基因功能的有效工具。我们已经在复制控制载体中产生,排列和测序了弓形虫基因组DNA的fosmid文库,该库提供了出色的基因组覆盖范围。 fosmids保持单拷贝状态,从而极大地提高了它们的稳定性,并允许通过简单且高度可扩展的协议进行修饰。我们在这里显示修饰和未修饰的fosmid克隆是用于正向和反向遗传学的强大工具。

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