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A Counterselectable Sucrose Sensitivity Marker Permits Efficient and Flexible Mutagenesis in Streptococcus agalactiae

机译:可逆选择的蔗糖敏感性标记允许无乳链球菌高效而灵活的诱变。

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Streptococcus agalactiae (group B Streptococcus [GBS]) is a cause of severe infections, particularly during the newborn period. While methods exist for generating chromosomal mutations in GBS, they are cumbersome and inefficient and present significant challenges if the goal is to study subtle mutations, such as single-base-pair polymorphisms. To address this problem, we have developed an efficient and flexible GBS mutagenesis protocol based on sucrose counterselection against levansucrase (SacB) expressed from a temperature-selective shuttle vector. GBS containing the SacB expression cassette demonstrates lethal sensitivity to supplemental sucrose whether the plasmid DNA is replicating outside of the chromosome or has been integrated during a crossover event. Transmission electron microscopy shows that SacB-mediated lethal sucrose sensitivity results from the accumulation of inclusion bodies that eventually lead to complete degradation of normal cellular architecture and subsequent lysis. We used this new mutagenesis technique to generate an in-frame, allelic exchange knockout of the GBS sortase gene srtA, demonstrating that >99% of colonies that emerge from our protocol had the expected knockout phenotype and that among a subset tested by sequencing, 100% had the correct genotype. We also generated barcoded nonsense mutations in the cylE gene in two GBS strains, showing that the approach can be used to make small, precise chromosomal mutations.IMPORTANCE The ability to generate chromosomal mutations is fundamental to microbiology. Historically, however, GBS pathogenesis research has been made challenging by the relative genetic intractability of the organism. Generating a single knockout in GBS using traditional techniques can take many months, with highly variable success rates. Furthermore, traditional methods do not offer a straightforward way to generate single-base-pair polymorphisms or other subtle changes, especially to noncoding regions of the chromosome. We have developed a new sucrose counterselection-based method that permits rapid, efficient, and flexible GBS mutagenesis. Our technique requires no additional equipment beyond what is needed for traditional approaches. We believe that it will catalyze rapid advances in GBS genetics research by significantly easing the path to generating mutants.
机译:无乳链球菌(B组链球菌[GBS])是造成严重感染的原因,尤其是在新生儿时期。尽管存在用于在GBS中生成染色体突变的方法,但它们的麻烦且效率低下,如果目标是研究细微的突变(例如单碱基对多态性),则将面临严峻的挑战。为了解决这个问题,我们已经开发了一种有效而灵活的GBS诱变方案,该方案基于蔗糖对从温度选择性穿梭载体表达的蔗糖酶(SacB)的反选择。含有SacB表达盒的GBS证明,无论质粒DNA在染色体外复制还是在交叉事件中整合,对补充蔗糖均具有致命的敏感性。透射电子显微镜显示,SacB介导的致死蔗糖敏感性是包涵体积累的结果,最终导致正常细胞结构的完全降​​解和随后的裂解。我们使用这项新的诱变技术生成了GBS分选酶基因srtA的框内等位基因交换敲除,表明从我们的实验方案中选出的菌落中有> 99%具有预期的敲除表型,并且在通过测序测试的子集中有100个%具有正确的基因型。我们还在两个GBS菌株的cylE基因中产生了条码化的无意义突变,表明该方法可用于产生小的,精确的染色体突变。重要提示产生染色体突变的能力是微生物学的基础。然而,从历史上看,GBS发病机理研究因该生物的相对遗传难处理性而具有挑战性。使用传统技术在GBS中生成单个基因剔除可能要花费数月的时间,成功率会大大不同。此外,传统方法没有提供直接的方法来生成单碱基对多态性或其他细微变化,尤其是对染色体的非编码区域。我们已经开发了一种基于蔗糖反选择的新方法,可以快速,高效和灵活地进行GBS诱变。我们的技术不需要传统方法所需的其他设备。我们认为,它将显着简化生成突变体的途径,将催化GBS遗传学研究的快速发展。

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