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利用REXER和GENESIS在大肠杆菌中创建定制合成基因组。

Creating custom synthetic genomes in Escherichia coli with REXER and GENESIS.

作者信息

Robertson Wesley E, Funke Louise F H, de la Torre Daniel, Fredens Julius, Wang Kaihang, Chin Jason W

机构信息

Medical Research Council Laboratory of Molecular Biology, Cambridge, England, UK.

Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, CA, USA.

出版信息

Nat Protoc. 2021 May;16(5):2345-2380. doi: 10.1038/s41596-020-00464-3. Epub 2021 Apr 26.

Abstract

We previously developed REXER (Replicon EXcision Enhanced Recombination); this method enables the replacement of >100 kb of the Escherichia coli genome with synthetic DNA in a single step and allows the rapid identification of non-viable or otherwise problematic sequences with nucleotide resolution. Iterative repetition of REXER (GENESIS, GENomE Stepwise Interchange Synthesis) enables stepwise replacement of longer contiguous sections of genomic DNA with synthetic DNA, and even the replacement of the entire E. coli genome with synthetic DNA. Here we detail protocols for REXER and GENESIS. A standard REXER protocol typically takes 7-10 days to complete. Our description encompasses (i) synthetic DNA design, (ii) assembly of synthetic DNA constructs, (iii) utilization of CRISPR-Cas9 coupled to lambda-red recombination and positive/negative selection to enable the high-fidelity replacement of genomic DNA with synthetic DNA (or insertion of synthetic DNA), (iv) evaluation of the success of the integration and replacement and (v) identification of non-tolerated synthetic DNA sequences with nucleotide resolution. This protocol provides a set of precise genome engineering methods to create custom synthetic E. coli genomes.

摘要

我们之前开发了REXER(复制子切除增强重组);该方法能够在一步反应中用合成DNA替换超过100 kb的大肠杆菌基因组,并能以核苷酸分辨率快速鉴定无活力或有其他问题的序列。REXER的迭代重复(GENESIS,基因组逐步交换合成)能够用合成DNA逐步替换更长的连续基因组DNA片段,甚至能用合成DNA替换整个大肠杆菌基因组。在此,我们详细介绍REXER和GENESIS的实验方案。一个标准的REXER实验方案通常需要7至10天完成。我们的描述涵盖:(i)合成DNA设计,(ii)合成DNA构建体的组装,(iii)利用与λ-红重组及正负选择偶联的CRISPR-Cas9,以实现用合成DNA高保真替换基因组DNA(或插入合成DNA),(iv)评估整合和替换的成功情况,以及(v)以核苷酸分辨率鉴定无法耐受的合成DNA序列。该实验方案提供了一套精确的基因组工程方法,用于创建定制的合成大肠杆菌基因组。

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本文引用的文献

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