大肠杆菌的系统代谢工程。

Q1 Medicine EcoSal Plus Pub Date : 2016-05-01 DOI:10.1128/ecosalplus.ESP-0010-2015
Kyeong Rok Choi, Jae Ho Shin, Jae Sung Cho, Dongsoo Yang, Sang Yup Lee
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引用次数: 0

摘要

系统代谢工程是最近出现的一种代谢工程,它与系统生物学、合成生物学和进化工程相结合,可以在系统水平上对微生物进行工程改造,生产出远远超出其自身能力的有价值的化学物质。在此,我们回顾了系统代谢工程的策略,尤其是其在大肠杆菌中的应用。首先,我们将介绍为提高所需化学品的生产滴度而开发的各种大肠杆菌遗传操作工具。接下来,我们将详细介绍大肠杆菌系统代谢工程的策略,包括原生代谢工程、通过合成途径扩展代谢以及为提高所需化学品的生产滴度而进行的工艺工程。最后,我们将以几个通过系统代谢工程开发的大肠杆菌菌株生产的著名产品为案例进行研究。这里列出的由工程大肠杆菌成功生产的大量化学产品组合表明,在微生物生产化学品方面可以设想和实现的能力是巨大的。系统代谢工程已不再处于起步阶段,它现在已得到广泛应用,并将进一步采用下一代跨学科原则和创新技术进行升级。系统代谢工程在开发包括大肠杆菌在内的工业菌株方面将发挥越来越重要的作用,这些菌株能够利用可再生的非食用生物质高效生产天然和非天然的化学品和材料。
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Systems Metabolic Engineering of Escherichia coli.

Systems metabolic engineering, which recently emerged as metabolic engineering integrated with systems biology, synthetic biology, and evolutionary engineering, allows engineering of microorganisms on a systemic level for the production of valuable chemicals far beyond its native capabilities. Here, we review the strategies for systems metabolic engineering and particularly its applications in Escherichia coli. First, we cover the various tools developed for genetic manipulation in E. coli to increase the production titers of desired chemicals. Next, we detail the strategies for systems metabolic engineering in E. coli, covering the engineering of the native metabolism, the expansion of metabolism with synthetic pathways, and the process engineering aspects undertaken to achieve higher production titers of desired chemicals. Finally, we examine a couple of notable products as case studies produced in E. coli strains developed by systems metabolic engineering. The large portfolio of chemical products successfully produced by engineered E. coli listed here demonstrates the sheer capacity of what can be envisioned and achieved with respect to microbial production of chemicals. Systems metabolic engineering is no longer in its infancy; it is now widely employed and is also positioned to further embrace next-generation interdisciplinary principles and innovation for its upgrade. Systems metabolic engineering will play increasingly important roles in developing industrial strains including E. coli that are capable of efficiently producing natural and nonnatural chemicals and materials from renewable nonfood biomass.

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来源期刊
EcoSal Plus
EcoSal Plus Immunology and Microbiology-Microbiology
CiteScore
12.20
自引率
0.00%
发文量
4
期刊介绍: EcoSal Plus is the authoritative online review journal that publishes an ever-growing body of expert reviews covering virtually all aspects of E. coli, Salmonella, and other members of the family Enterobacteriaceae and their use as model microbes for biological explorations. This journal is intended primarily for the research community as a comprehensive and continuously updated archive of the entire corpus of knowledge about the enteric bacterial cell. Thoughtful reviews focus on physiology, metabolism, genetics, pathogenesis, ecology, genomics, systems biology, and history E. coli and its relatives. These provide the integrated background needed for most microbiology investigations and are essential reading for research scientists. Articles contain links to E. coli K12 genes on the EcoCyc database site and are available as downloadable PDF files. Images and tables are downloadable to PowerPoint files.
期刊最新文献
Type IV pili of Enterobacteriaceae species. Transcription activation in Escherichia coli and Salmonella. Type I toxin-antitoxin systems in bacteria: from regulation to biological functions. Spatio-temporal organization of the E. coli chromosome from base to cellular length scales. Genetic engineering of Salmonella spp. for novel vaccine strategies and therapeutics.
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