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Identifying lineage effects when controlling for population structure improves power in bacterial association studies

机译:在控制种群结构时识别谱系效应可提高细菌关联研究的功效

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Bacteria pose unique challenges for genome-wide association studies because of strong structuring into distinct strains and substantial linkage disequilibrium across the genome1,2. Although methods developed for human studies can correct for strain structure3,4, this risks considerable loss-of-power because genetic differences between strains often contribute substantial phenotypic variability5. Here, we propose a new method that captures lineage-level associations even when locus-specific associations cannot be fine-mapped. We demonstrate its ability to detect genes and genetic variants underlying resistance to 17 antimicrobials in 3,144 isolates from four taxonomically diverse clonal and recombining bacteria: Mycobacterium tuberculosis, Staphylococcus aureus, Escherichia coli and Klebsiella pneumoniae. Strong selection, recombination and penetrance confer high power to recover known antimicrobial resistance mechanisms and reveal a candidate association between the outer membrane porin nmpC and cefazolin resistance in E. coli.Hence,ourmethod pinpoints locus-specific effects where possible and boosts power by detecting lineage-level differences when fine-mapping is intractable.
机译:细菌对全基因组关联研究构成了独特的挑战,因为其强大的结构形成了不同的菌株,并且整个基因组之间存在严重的连锁不平衡1,2。尽管为人类研究开发的方法可以纠正菌株结构[3,4],但是由于菌株之间的遗传差异通常会造成显着的表型变异性[5],因此这可能会造成很大的功率损失。在这里,我们提出了一种新方法,即使无法精确映射特定于轨迹的关联,也可以捕获谱系级别的关联。我们证明了它有能力检测来自四种分类学上不同的克隆和重组细菌:结核分枝杆菌,金黄色葡萄球菌,大肠杆菌和肺炎克雷伯氏菌的3,144个分离株中对17种抗菌药具有抗性的基因和遗传变异。强大的选择,重组和渗透能力赋予其强大的能力,可以恢复已知的抗药性机制,并揭示大肠杆菌的外膜孔蛋白nmpC和头孢唑林耐药性之间的候选关联。因此,我们的方法在可能的情况下指出了特定于基因座的作用,并通过检测谱系来增强能量精细映射难以处理时的级别差异。

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