Geng Binan, Wu Yalun, Wu Xinyan, Yang Yongfu, Zhou Peng, Chen Yunhaon, Zhou Xuan, Liu Chenguang, Bai Fengwu, Xu Ping, He Qiaoning, Yang Shihui
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引用次数: 0
摘要
目前的生物技术依赖于少数经过深入研究的模式生物,如大肠杆菌和酿酒酵母,这些生物拥有丰富的信息和高效的基因操作工具包,但缺乏有利于工业的特性。非模式工业微生物通常没有有效和/或高效的基因组工程工具包,这阻碍了微生物细胞工厂的发展,无法满足快速增长的生物经济。在这项研究中,我们以非模式乙醇杆菌(Zymomonas mobilis)为例,开发了一套工作流程,挖掘和锤炼了隐藏在工业微生物自身中的限制性修饰(R-M)、CRISPR/Cas、毒素-抗毒素(T-A)系统和原生质粒等元素,将其作为高效的基因组编辑工具包,并建立了全基因组迭代和连续编辑(GW-ICE)系统,实现了高效的连续基因组编辑。这项研究不仅为非模式多倍体工业微生物 Z. mobilis 的高效工程化提供了工具和管道,而且为克服其他基因上难以克服的非模式工业微生物的生物技术局限性树立了范例。
Efficient genome-editing tools to engineer the recalcitrant non-model industrial microorganism Zymomonas mobilis.
Current biotechnology relies on a few well-studied model organisms, such as Escherichia coli and Saccharomyces cerevisiae, for which abundant information and efficient toolkits are available for genetic manipulation, but which lack industrially favorable characteristics. Non-model industrial microorganisms usually do not have effective and/or efficient genome-engineering toolkits, which hampers the development of microbial cell factories to meet the fast-growing bioeconomy. In this study, using the non-model ethanologenic bacterium Zymomonas mobilis as an example, we developed a workflow to mine and temper the elements of restriction-modification (R-M), CRISPR/Cas, toxin-antitoxin (T-A) systems, and native plasmids, which are hidden within industrial microorganisms themselves, as efficient genome-editing toolkits, and established a genome-wide iterative and continuous editing (GW-ICE) system for continuous genome editing with high efficiency. This research not only provides tools and pipelines for engineering the non-model polyploid industrial microorganism Z. mobilis efficiently, but also sets a paradigm to overcome biotechnological limitations in other genetically recalcitrant non-model industrial microorganisms.
期刊介绍:
Trends in Biotechnology publishes reviews and perspectives on the applied biological sciences, focusing on useful science applied to, derived from, or inspired by living systems.
The major themes that TIBTECH is interested in include:
Bioprocessing (biochemical engineering, applied enzymology, industrial biotechnology, biofuels, metabolic engineering)
Omics (genome editing, single-cell technologies, bioinformatics, synthetic biology)
Materials and devices (bionanotechnology, biomaterials, diagnostics/imaging/detection, soft robotics, biosensors/bioelectronics)
Therapeutics (biofabrication, stem cells, tissue engineering and regenerative medicine, antibodies and other protein drugs, drug delivery)
Agroenvironment (environmental engineering, bioremediation, genetically modified crops, sustainable development).