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利用短同源臂提高 中的同源重组效率以实现多重基因组整合。

Enhancing Homologous Recombination Efficiency in for Multiplex Genome Integration Using Short Homology Arms.

机构信息

Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou 310027, China.

Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou 310027, China.

出版信息

ACS Synth Biol. 2022 Feb 18;11(2):547-553. doi: 10.1021/acssynbio.1c00366. Epub 2022 Jan 21.

Abstract

There is a growing interest in establishing the methylotrophic yeast as microbial cell factories for producing fuels, chemicals, and natural products, particularly with methanol as the feedstock. Although CRISPR (Clustered Regularly Interspaced Short Palindromic Repeats) based genome editing technology has been established for the integration of multigene biosynthetic pathways, long (500-1000 bp) homology arms are generally required, probably due to low homologous recombination (HR) efficiency in . To achieve efficient genome integration of heterologous genes with short homology arms, we aimed to enhance HR efficiency by introducing the recombination machinery from . First, we overexpressed HR related genes, including , , , and , and evaluated their effects on genome integration efficiency. Then, we constructed HR efficiency enhanced , which enabled single-, two-, and three-loci integration of heterologous gene expression cassettes with ∼40 bp homology arms with efficiencies as high as 100%, ∼98%, and ∼81%, respectively. Finally, we demonstrated the construction of β-carotene producing strain and the optimization of betaxanthin producing strain in a single step. The HR efficiency enhanced strains can be used for the construction of robust cell factories, and our machinery engineering strategy can be employed for the modification of other nonconventional yeasts.

摘要

人们越来越有兴趣将甲醇营养型酵母 作为微生物细胞工厂,用于生产燃料、化学品和天然产物,特别是以甲醇为原料。尽管基于 CRISPR(Clustered Regularly Interspaced Short Palindromic Repeats)的基因组编辑技术已经建立用于整合多基因生物合成途径,但通常需要长(500-1000bp)同源臂,这可能是由于 中的同源重组(HR)效率低。为了实现具有短同源臂的异源基因的高效基因组整合,我们旨在通过引入来自 的重组机制来提高 HR 效率。首先,我们过表达了与 HR 相关的基因,包括 、 、 和 ,并评估了它们对基因组整合效率的影响。然后,我们构建了 HR 效率增强型 ,它能够以高达 100%、98%和 81%的效率进行单、双和三基因座异源基因表达盒的整合,同源臂长度约为 40bp。最后,我们在一步中展示了β-胡萝卜素生产菌株的构建和甜菜黄素生产菌株的优化。HR 效率增强型 菌株可用于构建稳健的细胞工厂,我们的机械工程策略可用于修饰其他非常规酵母。

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