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首页> 外文期刊>PLoS Genetics >A Genome-Wide Screen for Bacterial Envelope Biogenesis Mutants Identifies a Novel Factor Involved in Cell Wall Precursor Metabolism
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A Genome-Wide Screen for Bacterial Envelope Biogenesis Mutants Identifies a Novel Factor Involved in Cell Wall Precursor Metabolism

机译:细菌包膜生物发生突变的全基因组筛选确定了涉及细胞壁前体代谢的新因素。

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The cell envelope of Gram-negative bacteria is a formidable barrier that is difficult for antimicrobial drugs to penetrate. Thus, the list of treatments effective against these organisms is small and with the rise of new resistance mechanisms is shrinking rapidly. New therapies to treat Gram-negative bacterial infections are therefore sorely needed. This goal will be greatly aided by a detailed mechanistic understanding of envelope assembly. Although excellent progress in the identification of essential envelope biogenesis systems has been made in recent years, many aspects of the process remain to be elucidated. We therefore developed a simple, quantitative, and high-throughput assay for mutants with envelope biogenesis defects and used it to screen an ordered single-gene deletion library of Escherichia coli. The screen was robust and correctly identified numerous mutants known to be involved in envelope assembly. Importantly, the screen also implicated 102 genes of unknown function as encoding factors that likely impact envelope biogenesis. As a proof of principle, one of these factors, ElyC (YcbC), was characterized further and shown to play a critical role in the metabolism of the essential lipid carrier used for the biogenesis of cell wall and other bacterial surface polysaccharides. Further analysis of the function of ElyC and other hits identified in our screen is likely to uncover a wealth of new information about the biogenesis of the Gram-negative envelope and the vulnerabilities in the system suitable for drug targeting. Moreover, the screening assay described here should be readily adaptable to other organisms to study the biogenesis of different envelope architectures.
机译:革兰氏阴性细菌的细胞膜是一个强大的屏障,抗菌药物很难穿透。因此,对这些生物有效的治疗方法很少,并且随着新的抗药性机制的兴起而迅速缩小。因此,迫切需要用于治疗革兰氏阴性细菌感染的新疗法。对信封组装的详细机械理解将大大帮助实现该目标。尽管近年来在识别必需包膜生物发生系统方面已取得了卓越的进展,但该过程的许多方面仍有待阐明。因此,我们为具有包膜生物发生缺陷的突变体开发了一种简单,定量和高通量的测定方法,并将其用于筛选大肠杆菌的有序单基因缺失文库。该筛选是鲁棒的,并正确鉴定了已知参与包膜组装的许多突变体。重要的是,该筛选还牵涉到102个未知功能的基因,作为可能影响包膜生物发生的编码因子。作为原理的证明,这些因子之一ElyC(YcbC)被进一步表征,并显示在用于细胞壁和其他细菌表面多糖生物发生的必需脂质载体的代谢中起关键作用。进一步分析ElyC的功能以及我们在屏幕上发现的其他命中数据,很可能会发现大量有关革兰氏阴性包膜的生物发生以及系统中适用于靶向药物的漏洞的新信息。此外,此处描述的筛选方法应易于适应其他生物,以研究不同包膜结构的生物发生。

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