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工程化的 CRISPR/Cas9 系统用于节杆菌属物种的转录基因沉默,表明细菌血红色素对于在低温下生长是必不可少的。

Engineered CRISPR/Cas9 System for Transcriptional Gene Silencing in Arthrobacter Species Indicates Bacterioruberin is Indispensable for Growth at Low Temperatures.

机构信息

Institute of Nutritional and Food Science, Food Microbiology and Hygiene, University of Bonn, Friedrich-Hirzebruch-Allee 7, 53115, Bonn, Germany.

出版信息

Curr Microbiol. 2022 May 20;79(7):199. doi: 10.1007/s00284-022-02887-5.

Abstract

Pink-pigmented Arthrobacter species produce the rare C carotenoid bacterioruberin, which is suspected to be part of the cold adaptation mechanism. In silico analysis of the repertoire of genes encoded by the Arthrobacter agilis and Arthrobacter bussei genome revealed the biosynthetic pathway of bacterioruberin. Although genetic analysis is an essential tool for studying the physiology of Arthrobacter species, genetic manipulation of Arthrobacter is always time and labor intensive due to the lack of genetic engineering tools. Here we report the construction and application of a CRISPR/deadCas9 system (pCasiART) for gene silencing in Arthrobacter species. The engineered system pCasiART is suitable for the Golden Gate assembly of spacers, enabling rapid and accurate construction of adapted systems. In addition, pCasiART has been developed to provide an efficient transcription inhibition system for genome-wide gene silencing. The gene silencing of the phytoene synthase (CrtB), the first enzyme in bacterioruberin biosynthesis, suppressed bacterioruberin biosynthesis in Arthrobacter agilis and Arthrobacter bussei, resulting in a lack of pink pigmentation, reduction of biomass production, and growth rates at low temperatures.

摘要

粉红着色节杆菌属产生罕见的 C 类胡萝卜素细菌血质红,其被怀疑是适应寒冷机制的一部分。对节杆菌属和节杆菌属基因组编码基因库的计算机分析揭示了细菌血质红的生物合成途径。尽管遗传分析是研究节杆菌属物种生理学的重要工具,但由于缺乏遗传工程工具,节杆菌属的遗传操作总是耗时耗力。在这里,我们报告了用于节杆菌属基因沉默的 CRISPR/deadCas9 系统(pCasiART)的构建和应用。工程系统 pCasiART 适合用于间隔物的 Golden Gate 组装,能够快速准确地构建适应性系统。此外,pCasiART 已被开发为用于全基因组基因沉默的有效转录抑制系统。类胡萝卜素生物合成的第一酶细菌血质红生物合成酶(CrtB)的基因沉默抑制了节杆菌属和节杆菌属中细菌血质红的生物合成,导致缺乏粉红色素、生物量生产减少以及在低温下的生长速率降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d112/9122864/e978b987d89e/284_2022_2887_Fig1_HTML.jpg

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