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A Comprehensive, CRISPR-based Functional Analysis of Essential Genes in Bacteria

机译:细菌必需基因的基于CRISPR的全面功能分析

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Essential gene functions underpin the core reactions required for cell viability, but their contributions and relationships are poorly studied in vivo. Using CRISPR interference, we created knockdowns of every essential gene in Bacillus subtilis and probed their phenotypes. Our high-confidence essential gene network, established using chemical genomics, showed extensive interconnections among distantly related processes and identified modes of action for uncharacterized antibiotics. Importantly, mild knockdown of essential gene functions significantly reduced stationary-phase survival without affecting maximal growth rate, suggesting that essential protein levels are set to maximize outgrowth from stationary phase. Finally, high-throughput microscopy indicated that cell morphology is relatively insensitive to mild knockdown but profoundly affected by depletion of gene function, revealing intimate connections between cell growth and shape. Our results provide a framework for systematic investigation of essential gene functions in vivo broadly applicable to diverse microorganisms and amenable to comparative analysis.
机译:必需的基因功能是细胞活力所需的核心反应的基础,但它们的作用和相互关系在体内研究较少。利用CRISPR干扰,我们在枯草芽孢杆菌中创建了每个必需基因的基因敲低并探查了它们的表型。我们使用化学基因组学建立的高度自信的必需基因网络显示了远距离相关过程之间的广泛互连,并确定了未表征抗生素的作用方式。重要的是,基本基因功能的轻度敲低显着降低了固定相的存活率,而不会影响最大生长速率,这表明必须将必需的蛋白质水平设置为最大程度地增加固定相的生长。最后,高通量显微镜检查表明细胞形态对轻敲除相对不敏感,但受基因功能耗竭的影响很大,揭示了细胞生长与形状之间的紧密联系。我们的结果提供了系统研究体内必需基因功能的框架,该框架广泛适用于多种微生物并且适合进行比较分析。

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