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Rapid efficient and precise allele replacement in the fission yeast Schizosaccharomyces pombe

机译:裂殖酵母粟酒裂殖酵母的快速高效和精确的等位基因替换

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摘要

Gene targeting provides a powerful tool to modify endogenous loci to contain specific mutations, insertions and deletions. Precise allele replacement, with no other chromosomal changes (e.g., insertion of selectable markers or heterologous promoters), maintains physiologically relevant context. Established methods for precise allele replacement in fission yeast employ two successive rounds of transformation and homologous recombination and require genotyping at each step. The relative efficiency of homologous recombination is low and a high rate of false positives during the second round of gene targeting further complicates matters. We report that pop-in, pop-out allele replacement circumvents these problems. We present data for 39 different allele replacements, involving simple and complex modifications at seven different target loci, that illustrate the power and utility of the approach. We also developed and validated a rapid, efficient process for precise allele replacement that requires only one round each of transformation and genotyping. We show that this process can be applied in population scale to an individual target locus, without genotyping, to identify clones with an altered phenotype (targeted forward genetics). It is therefore suitable for saturating, in situ, locus-specific mutation screens (e.g., of essential or non-essential genes and regulatory DNA elements) within normal chromosomal context.
机译:基因靶向提供了一个强大的工具,可以修改内源性基因座以包含特定的突变,插入和缺失。精确的等位基因置换,没有其他染色体变化(例如,插入选择标记或异源启动子),可以维持生理相关的环境。在裂变酵母中建立精确的等位基因置换的方法,需要连续两轮转化和同源重组,并且每个步骤都需要进行基因分型。同源重组的相对效率较低,在第二轮基因靶向期间假阳性率较高,这使事情变得更加复杂。我们报告说,弹出,弹出等位基因替换可以避免这些问题。我们提供了39个不同等位基因替换的数据,这些数据涉及在七个不同目标基因座处的简单和复杂修饰,这些数据说明了该方法的功能和实用性。我们还开发并验证了快速,高效的过程,可进行精确的等位基因替换,每个过程仅需进行一轮转化和基因分型。我们表明,该过程可以在人口规模上应用到单个目标基因座,而无需进行基因分型,以鉴定具有改变的表型(定向正向遗传学)的克隆。因此,它适合在正常染色体范围内原位饱和基因座特异性突变筛选(例如,必需或非必需基因和调节性DNA元件)。

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