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Improved discovery of genetic interactions using CRISPRiSeq across multiple environments

机译:使用CRISPRiSeq在多个环境中改善遗传相互作用的发现

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摘要

Large-scale genetic interaction (GI) screens in yeast have been invaluable for our understanding of molecular systems biology and for characterizing novel gene function. Owing in part to the high costs and long experiment times required, a preponderance of GI data has been generated in a single environmental condition. However, an unknown fraction of GIs may be specific to other conditions. Here, we developed a pooled-growth CRISPRi-based sequencing assay for GIs, CRISPRiSeq, which increases throughput such that GIs can be easily assayed across multiple growth conditions. We assayed the fitness of approximately 17,000 strains encompassing approximately 7700 pairwise interactions in five conditions and found that the additional conditions increased the number of GIs detected nearly threefold over the number detected in rich media alone. In addition, we found that condition-specific GIs are prevalent and improved the power to functionally classify genes. Finally, we found new links during respiratory growth between members of the Ras nutrient–sensing pathway and both the COG complex and a gene of unknown function. Our results highlight the potential of conditional GI screens to improve our understanding of cellular genetic networks.
机译:酵母中的大规模遗传相互作用(GI)筛查对于我们对分子系统生物学的了解以及对新型基因功能的表征无价。部分由于需要高昂的成本和较长的实验时间,在单个环境条件下已生成了大量的GI数据。但是,GI的未知部分可能是针对其他情况的。在这里,我们为GI开发了基于CRISPRi的基于池增长的测序测定法,即CRISPRiSeq,它提高了通量,因此可以轻松地在多种生长条件下测定GI。我们在五个条件下分析了大约17,000个菌株的适应性,其中包括大约7700个成对相互作用,并且发现其他条件使所检测到的GI数量几乎比仅在富培养基中检测到的GI数量高出三倍。此外,我们发现条件特定的GI普遍存在,并提高了功能上对基因进行分类的能力。最后,我们在Ras营养感测途径的成员与COG复合物和功能未知基因之间的呼吸生长过程中发现了新的联系。我们的结果凸显了有条件的GI筛查可能提高我们对细胞遗传网络的理解的潜力。

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