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作为铜绿假单胞菌菌株基因操作选择标记的亚碲酸盐抗性

Resistance to tellurite as a selection marker for genetic manipulations of Pseudomonas strains.

作者信息

Sanchez-Romero J M, Diaz-Orejas R, De Lorenzo V

机构信息

Centro de Investigaciones Biológicas, Consejo Superior de Investigaciones Científicas, 28049 Madrid, Spain.

出版信息

Appl Environ Microbiol. 1998 Oct;64(10):4040-6. doi: 10.1128/AEM.64.10.4040-4046.1998.

Abstract

Resistance to the toxic compound potassium tellurite (Telr) has been employed as a selection marker built into a set of transposon vectors and broad-host-range plasmids tailored for genetic manipulations of Pseudomonas strains potentially destined for environmental release. In this study, the activated Telr determinants encoded by the cryptic telAB genes of plasmid RK2 were produced, along with the associated kilA gene, as DNA cassettes compatible with cognate vectors. In one case, the Telr determinants were assembled between the I and O ends of a suicide delivery vector for mini-Tn5 transposons. In another case, the kilA and telAB genes were combined with a minimal replicon derived from a variant of Pseudomonas plasmid pPS10, which is able to replicate in a variety of gram-negative hosts and is endowed with a modular collection of cloning and expression assets. Either in the plasmid or in the transposon vector, the Telr marker was combined with a 12-kb DNA segment of plasmid pWW0 of Pseudomonas putida mt-2 encoding the upper TOL pathway enzymes. This allowed construction of antibiotic resistance-free but selectable P. putida strains with the ability to grow on toluene as the sole carbon source through an ortho-cleavage catabolic pathway.

摘要

对有毒化合物亚碲酸钾(Telr)的抗性已被用作一种选择标记,整合到一组转座子载体和广宿主范围质粒中,这些载体和质粒是为可能用于环境释放的假单胞菌菌株的基因操作量身定制的。在本研究中,由质粒RK2的隐蔽telAB基因编码的活化Telr决定簇与相关的kilA基因一起作为与同源载体兼容的DNA盒产生。在一种情况下,Telr决定簇组装在用于mini-Tn5转座子的自杀传递载体的I端和O端之间。在另一种情况下,kilA和telAB基因与源自假单胞菌质粒pPS10变体的最小复制子组合,该复制子能够在多种革兰氏阴性宿主中复制,并具有模块化的克隆和表达元件集合。无论是在质粒中还是在转座子载体中,Telr标记都与恶臭假单胞菌mt-2的质粒pWW0的一个12 kb DNA片段组合,该片段编码上TOL途径酶。这使得能够构建无抗生素抗性但可选择的恶臭假单胞菌菌株,这些菌株能够通过邻位裂解分解代谢途径以甲苯作为唯一碳源生长。

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