Institute of Molecular Microbiology and Biotechnology, Westfalian Wilhelms University Münster, Münster, Germany.
Appl Environ Microbiol. 2012 Apr;78(8):2515-21. doi: 10.1128/AEM.07502-11. Epub 2012 Jan 27.
Myxococcus xanthus is widely used as a model system for studying gliding motility, multicellular development, and cellular differentiation. Moreover, M. xanthus is a rich source of novel secondary metabolites. The analysis of these processes has been hampered by the limited set of tools for inducible gene expression. Here we report the construction of a set of plasmid vectors to allow copper-inducible gene expression in M. xanthus. Analysis of the effect of copper on strain DK1622 revealed that copper concentrations of up to 500 μM during growth and 60 μM during development do not affect physiological processes such as cell viability, motility, or aggregation into fruiting bodies. Of the copper-responsive promoters in M. xanthus reported so far, the multicopper oxidase cuoA promoter was used to construct expression vectors, because no basal expression is observed in the absence of copper and induction linearly depends on the copper concentration in the culture medium. Four different plasmid vectors have been constructed, with different marker selection genes and sites of integration in the M. xanthus chromosome. The vectors have been tested and gene expression quantified using the lacZ gene. Moreover, we demonstrate the functional complementation of the motility defect caused by lack of PilB by the copper-induced expression of the pilB gene. These versatile vectors are likely to deepen our understanding of the biology of M. xanthus and may also have biotechnological applications.
黄色粘球菌被广泛用作研究滑行运动、多细胞发育和细胞分化的模式生物。此外,黄色粘球菌是新型次生代谢物的丰富来源。这些过程的分析受到诱导基因表达的有限工具集的阻碍。在这里,我们报告了一组质粒载体的构建,以允许在黄色粘球菌中进行铜诱导的基因表达。对 DK1622 菌株的铜效应分析表明,生长过程中铜浓度高达 500 μM,发育过程中铜浓度高达 60 μM,不会影响细胞活力、运动或聚集成子实体等生理过程。到目前为止,在黄色粘球菌中报道的铜响应启动子中,多铜氧化酶 cuoA 启动子被用于构建表达载体,因为在没有铜的情况下没有观察到基础表达,并且诱导线性依赖于培养基中的铜浓度。已经构建了四个不同的质粒载体,它们具有不同的标记选择基因和在黄色粘球菌染色体上的整合位点。已经使用 lacZ 基因测试和量化了这些载体的基因表达。此外,我们通过铜诱导表达 pilB 基因来证明 PilB 缺失引起的运动缺陷的功能互补。这些多功能载体可能会加深我们对黄色粘球菌生物学的理解,也可能具有生物技术应用。