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High-Throughput Quantitative Genetic Interaction Mapping in the Fission Yeast Schizosaccharomyces pombe

机译:裂殖酵母裂殖酵母中的高通量定量遗传相互作用图谱

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摘要

Epistasis mapping, in which the phenotype that emerges from combining pairs of mutations is measured quantitatively, is a powerful tool for unbiased study of gene function. When performed at a large scale, this approach has been used to assign function to previously uncharacterized genes, define functional modules and pathways, and study their cross talk. These experiments rely heavily on methods for rapid sampling of binary combinations of mutant alleles by systematic generation of a series of double mutants. Epistasis mapping technologies now exist in various model systems. Here we provide an overview of different epistasis mapping technologies, including the pombe epistasis mapper (PEM) system designed for the collection of quantitative genetic interaction data in fission yeast Schizosaccharomyces pombe. Comprising a series of high-throughput selection steps for generation and characterization of double mutants, the PEM system has provided insight into a wide range of biological processes as well as facilitated evolutionary analysis of genetic interactomes across different species.
机译:上位作图是对基因功能进行无偏研究的有力工具,其中定量分析结合突变对产生的表型。当大规模执行时,这种方法已被用于为以前未表征的基因分配功能,定义功能模块和途径以及研究其相互影响。这些实验严重依赖于通过系统产生一系列双突变体来快速采样突变体等位基因二元组合的方法。现在,上位制图技术存在于各种模型系统中。在这里,我们提供了不同的上位图作图技术的概述,包括为裂变酵母粟酒裂殖酵母中定量遗传相互作用数据的收集而设计的pombe上位图作图仪(PEM)系统。 PEM系统包含用于生成和表征双突变体的一系列高通量选择步骤,不仅提供了对广泛的生物学过程的深刻见解,而且还促进了跨不同物种的遗传相互作用组的进化分析。

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