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A High-Throughput Method for Screening for Genes Controlling Bacterial Conjugation of Antibiotic Resistance

机译:用于筛选抗生素抗性细菌缀合的基因筛选的高通量方法

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The rapid horizontal transmission of antibiotic resistance genes on conjugative plasmids between bacterial host cells is a major cause of the accelerating antibiotic resistance crisis. There are currently no experimental platforms for fast and cost-efficient screening of genetic effects on antibiotic resistance transmission by conjugation, which prevents understanding and targeting conjugation. We introduce a novel experimental framework to screen for conjugation-based horizontal transmission of antibiotic resistance between 60,000 pairs of cell populations in parallel. Plasmid-carrying donor strains are constructed in high-throughput. We then mix the resistance plasmid-carrying donors with recipients in a design where only transconjugants can reproduce, measure growth in dense intervals, and extract transmission times as the growth lag. As proof-of-principle, we exhaustively explore chromosomal genes controlling F-plasmid donation within Escherichia coli populations, by screening the Keio deletion collection in high replication. We recover all seven known chromosomal gene mutants affecting conjugation as donors and identify many novel mutants, all of which diminish antibiotic resistance transmission. We validate nine of the novel genes’ effects in liquid mating assays and complement one of the novel genes’ effect on conjugation ( rseA ). The new framework holds great potential for exhaustive disclosing of candidate targets for helper drugs that delay resistance development in patients and societies and improve the longevity of current and future antibiotics. Further, the platform can easily be adapted to explore interspecies conjugation, plasmid-borne factors, and experimental evolution and be used for rapid construction of strains. IMPORTANCE The rapid transmission of antibiotic resistance genes on conjugative plasmids between bacterial host cells is a major cause of the accelerating antibiotic resistance crisis. There are currently no experimental platforms for fast and cost-efficient screening of genetic effects on antibiotic resistance transmission by conjugation, which prevents understanding and targeting conjugation. We introduce a novel experimental framework to screen for conjugation-based horizontal transmission of antibiotic resistance between 60,000 pairs of cell populations in parallel. As proof-of-principle, we exhaustively explore chromosomal genes controlling F-plasmid donation within E. coli populations. We recover all previously known and many novel chromosomal gene mutants that affect conjugation efficiency. The new framework holds great potential for rapid screening of compounds that decrease transmission. Further, the platform can easily be adapted to explore interspecies conjugation, plasmid-borne factors, and experimental evolution and be used for rapid construction of strains.
机译:抗生素抗性基因对细菌宿主细胞之间的共轭质粒的快速水平传递是加速抗生素抗性危机的主要原因。目前没有实验平台,用于快速和成本效益筛选对抗生素抗性传播的遗传效果通过缀合,这可以防止理解和靶向缀合。我们介绍了一种新的实验框架,用于筛选基于缀合的抗生素抗性的抗生素耐热,平行于其平行。载体供体菌株以高通量构建。然后,我们将携带抗性质粒的供体与接受者混合在设计中,其中只有经杂交师可以繁殖,测量致密间隔的生长,并提取传递时间作为增长滞后。作为原则上,我们通过筛选在高复制中筛选Keio缺失收集,详细地探索控制大肠杆菌群体内的F质子送捐赠的染色体基因。我们回复了影响缀合物作为供体的七种已知的染色体基因突变体,并鉴定许多新型突变体,所有这些突变体都会减少抗生素抗性传播。我们验证了九种基因对液态交配测定的影响,并补充了对缀合(RSEA)的新型基因的影响。新框架对辅助药物的详尽披露候选人目标造成了巨大的潜力,这些目标延迟患者和社会抵抗抗性发展,提高了当前和未来抗生素的寿命。此外,该平台可以很容易地适应探索间隙缀合,质粒归串和实验演化,并用于快速施工菌株。重要性抗生素抗性基因对细菌宿主细胞之间的共轭质粒的快速传播是加速抗生素抗性危机的主要原因。目前没有实验平台,用于快速和成本效益筛选对抗生素抗性传播的遗传效果通过缀合,这可以防止理解和靶向缀合。我们介绍了一种新的实验框架,用于筛选基于缀合的抗生素抗性的抗生素耐热,平行于其平行。作为原则上,我们详尽地探索了控制大肠杆菌种群内的F质子送的染色体基因。我们恢复了以前已知的和许多影响缀合效率的新型染色体基因突变体。新框架具有巨大的潜力,可快速筛选减少传输的化合物。此外,该平台可以很容易地适应探索间隙缀合,质粒归串和实验演化,并用于快速施工菌株。
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