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基于氨基镁粘土对里奥格兰德类芽孢杆菌和多粘类芽孢杆菌的转化及基因表达工具的开发

Magnesium aminoclay-based transformation of Paenibacillus riograndensis and Paenibacillus polymyxa and development of tools for gene expression.

作者信息

Brito Luciana Fernandes, Irla Marta, Walter Tatjana, Wendisch Volker F

机构信息

Genetics of Prokaryotes, Faculty of Biology and Center for Biotechnology (CeBiTec), Bielefeld University, Universitätsstraße 25, 33615, Bielefeld, Germany.

出版信息

Appl Microbiol Biotechnol. 2017 Jan;101(2):735-747. doi: 10.1007/s00253-016-7999-1. Epub 2016 Nov 23.

Abstract

Members of the genus Paenibacillus are widespread facultative anaerobic, endospore-forming bacteria. Some species such as Paenibacillus riograndensis or Paenibacillus polymyxa fix nitrogen and may play an important role in agriculture to reduce mineral nitrogen fertilization in particular for non-legume plants. The genetic manipulation of Paenibacillus is an imperative for the functional characterization, e.g., of its plant growth-promoting activities and metabolism. This study showed that P. riograndensis and P. polymyxa can be readily transformed using physical permeation by magnesium aminoclays. By means of the fluorescent reporter genes gfpUV, mcherry, and crimson, a two-plasmid system consisting of a theta-replicating plasmid and a rolling circle-replicating plasmid was shown to operate in both species. Xylose-inducible and mannitol-inducible fluorescent reporter gene expression was demonstrated in the compatible two-plasmid system by fluorescence-activated cell scanning. As a metabolic engineering application, the biotin requiring P. riograndensis was converted to a biotin-prototrophic strain based on mannitol-inducible expression of the biotin biosynthesis operon bioWAFDBI from Bacillus subtilis.

摘要

芽孢杆菌属的成员是广泛存在的兼性厌氧、形成芽孢的细菌。一些物种,如里奥格兰德芽孢杆菌或多粘芽孢杆菌能够固氮,并且在农业中可能发挥重要作用,特别是对于非豆科植物而言,可以减少矿物氮肥的使用。对芽孢杆菌进行基因操作对于其功能表征至关重要,例如对其促进植物生长的活性和代谢进行功能表征。这项研究表明,使用氨基镁粘土进行物理渗透,可以很容易地转化里奥格兰德芽孢杆菌和多粘芽孢杆菌。借助荧光报告基因gfpUV、mcherry和crimson,由θ复制质粒和滚环复制质粒组成的双质粒系统在这两个物种中均能发挥作用。通过荧光激活细胞扫描,在兼容的双质粒系统中证明了木糖诱导型和甘露醇诱导型荧光报告基因的表达。作为一种代谢工程应用,基于枯草芽孢杆菌生物素生物合成操纵子bioWAFDBI的甘露醇诱导表达,将需要生物素的里奥格兰德芽孢杆菌转化为生物素原养型菌株。

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