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A Tailored galK Counterselection System for Efficient Markerless Gene Deletion and Chromosomal Tagging in Magnetospirillum gryphiswaldense

机译:量身定制的galK反选择系统,用于在Gspirphispirsum gryphiswaldense中有效地进行无标记基因删除和染色体标记

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Magnetotactic bacteria have emerged as excellent model systems to study bacterial cell biology, biomineralization, vesicle formation, and protein targeting because of their ability to synthesize single-domain magnetite crystals within unique organelles (magnetosomes). However, only few species are amenable to genetic manipulation, and the limited methods for site-specific mutagenesis are tedious and time-consuming. Here, we report the adaptation and application of a fast and convenient technique for markerless chromosomal manipulation of Magnetospirillum gryphiswaldense using a single antibiotic resistance cassette and galK -based counterselection for marker recycling. We demonstrate the potential of this technique by genomic excision of the phbCAB operon, encoding enzymes for polyhydroxyalkanoate (PHA) synthesis, followed by chromosomal fusion of magnetosome-associated proteins to fluorescent proteins. Because of the absence of interfering PHA particles, these engineered strains are particularly suitable for microscopic analyses of cell biology and magnetosome biosynthesis.
机译:趋磁细菌已经成为研究细菌细胞生物学,生物矿化,囊泡形成和蛋白质靶向的优秀模型系统,因为它们能够在独特的细胞器(磁小体)中合成单畴磁铁矿晶体。但是,只有少数物种适合进行基因操作,并且针对位点特异性诱变的有限方法既繁琐又耗时。在这里,我们报告了快速和方便的技术的适应性和应用,该技术使用单个抗生素抗性盒和基于galK的反选择进行标记物回收利用,用于无磁性标记的G.phiswaldense的无螺旋体染色体操作。我们通过phbCAB操纵子的基因组切除,编码聚羟基链烷酸酯(PHA)合成的酶,然后将磁小体相关蛋白与荧光蛋白进行染色体融合,证明了该技术的潜力。由于不存在干扰的PHA颗粒,这些工程菌株特别适合用于细胞生物学和磁小体生物合成的显微镜分析。

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