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Advances in design, construction and applications of Bacillus subtilis chassis cells
LIN Lu, LV Xueqin, LIU Yanfeng, DU Guocheng, CHEN Jian, LIU Long
Synthetic Biology Journal    2020, 1 (2): 247-265.   DOI: 10.12211/2096-8280.2020-030
Abstract   (3438 HTML267 PDF(pc) (2798KB)(3356)  

As a model industrial host and an important generally recognized as safe microorganism, Bacillus subtilis has been used for a wide range of applications such as the industrial production of enzymes and nutraceuticals. In recent years, with the elucidation of the genetic regulation mechanism of B. subtilis, various research strategies and technologies have been designed and developed with this chassis, including gene editing, gene circuits, spatial biomolecular scaffold and cell-free expression systems. In this review, we start with systematic summaries on the construction of B. subtilis chassis based on gene editing systems and endogenous regulatory mechanisms. Then applications of B. subtilis cell factories are discussed for producing N-acetylglucosamine, menaquinone-7, riboflavin, hyaluronic acid and β-cyclodextrin glycosyltransferase. Finally, prospects for the design, construction and applications of engineered B. subtilis strains are commented, with an emphasis on improving genome editing efficiency, expanding responsive metabolite spectrum for genetic circuits, and rewiring the whole genome.


类别构建方法功能特性文献
基因编辑基因组简化利用无痕基因敲除技术构建多种基因组简化菌株[6]
CRISPR/Cas9迭代系统实现基因敲除、点突变和基因敲入,避免脱靶效应[7]
CRISPR-Cas9工具包实现基因敲除、多基因敲入和转录抑制[8]
CAMERS-B系统通过设计crRNA阵列实现多基因编辑和调控[9]
内源性启动子库基于细胞生长构建的内源性启动子文库[10]
模块化操作单元在转录翻译和蛋白水解水平上共同调节基因和蛋白的表达[11]
DNA支架通过DNA支架调节途径酶的空间比例和方向[12]
RNA支架通过RNA支架与特异性蛋白结合,转录抑制靶基因的表达[13]
内源性空间支架通过FMMs空间支架构建FMMs-多酶复合物系统[14]
无细胞蛋白表达系统以外源DNA为模板,利用细胞裂解物,可在体外表达蛋白质[15]
基因回路glmS核糖开关基于GlcN6P响应的天然glmS核糖开关[16]
配体-适体生物传感器基于配体凝血酶设计的双功能基因表达调控电路[17]
ADC系统基于生物传感器、CRISPR和合成基因回路的代谢流量动态自发双重调控(autonomous dual control,ADC)系统[18]
内源性调控系统Sec分泌途径通过改善Sec分泌途径,提高异源蛋白的分泌[19,20]
群体感应系统细胞密度达到阈值,动态调节相关基因的表达[21,22]
I型毒素-抗毒素系统通过抗毒素反义RNA与毒素mRNA互补配对,下调基因的表达[23]
碳分解代谢阻遏作用解除碳分解代谢阻遏作用,细胞可同时利用多种碳源[24]
Tab. 1 Methods for the construction of chassis cell in B. subtilis
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