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质粒复制的合成控制能够实现载体的靶向和自我消除,并加速……的基因组工程。 (原文句末不完整)

Synthetic control of plasmid replication enables target- and self-curing of vectors and expedites genome engineering of .

作者信息

Volke Daniel C, Friis Laura, Wirth Nicolas T, Turlin Justine, Nikel Pablo I

机构信息

The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, 2800, Kgs Lyngby, Denmark.

出版信息

Metab Eng Commun. 2020 Mar 19;10:e00126. doi: 10.1016/j.mec.2020.e00126. eCollection 2020 Jun.

Abstract

Genome engineering of non-conventional microorganisms calls for the development of dedicated synthetic biology tools. is a Gram-negative, non-pathogenic soil bacterium widely used for metabolic engineering owing to its versatile metabolism and high levels of tolerance to different types of stress. Genome editing of . largely relies on homologous recombination events, assisted by helper plasmid-based expression of genes encoding DNA modifying enzymes. Plasmid curing from selected isolates is the most tedious and time-consuming step of this procedure, and implementing commonly used methods to this end in . (e.g. temperature-sensitive replicons) is often impractical. To tackle this issue, we have developed a toolbox for both target- and self-curing of plasmid DNA in species. Our method enables plasmid-curing in a simple cultivation step by combining digestion of vectors by the I-I homing nuclease with synthetic control of plasmid replication, triggered by the addition of a cheap chemical inducer (3-methylbenzoate) to the medium. The system displays an efficiency of vector curing >90% and the screening of plasmid-free clones is greatly facilitated by the use of fluorescent markers that can be selected according to the application intended. Furthermore, quick genome engineering of . using self-curing plasmids is demonstrated through genome reduction of the platform strain EM42 by eliminating all genes encoding β-lactamases, the catabolic gene cluster, and the pyoverdine synthesis machinery. Physiological characterization of the resulting streamlined strain, . SEM10, revealed advantageous features that could be exploited for metabolic engineering.

摘要

非传统微生物的基因组工程需要开发专门的合成生物学工具。[具体微生物名称]是一种革兰氏阴性、非致病性土壤细菌,因其多样的代谢能力和对不同类型压力的高耐受性而被广泛用于代谢工程。[具体微生物名称]的基因组编辑在很大程度上依赖于同源重组事件,并由基于辅助质粒表达编码DNA修饰酶的基因来辅助。从选定的分离株中去除质粒是该过程中最繁琐、最耗时的步骤,而在[具体微生物名称]中为此实施常用方法(例如温度敏感型复制子)通常不切实际。为了解决这个问题,我们开发了一个用于[具体微生物名称]物种中质粒DNA靶向去除和自我去除的工具箱。我们的方法通过将I-I归巢核酸酶对载体的消化与质粒复制的合成控制相结合,在简单的培养步骤中实现质粒去除,这种合成控制由向培养基中添加一种廉价的化学诱导剂(3-甲基苯甲酸)触发。该系统显示载体去除效率>90%,并且通过使用可根据预期应用选择的荧光标记,极大地促进了无质粒克隆的筛选。此外,通过消除所有编码β-内酰胺酶的基因、分解代谢[具体基因簇名称]基因簇和绿脓菌素合成机制,对平台菌株EM42进行基因组缩减,证明了使用自我去除质粒对[具体微生物名称]进行快速基因组工程。对所得简化菌株[具体菌株名称]SEM10的生理特性进行表征,揭示了可用于代谢工程的有利特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ef5/7090339/1811741d6083/fx1.jpg

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