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Biofuel production in Escherichia coli: the role of metabolic engineering and synthetic biology

机译:大肠杆菌的生物燃料生产:代谢工程和合成生物学的作用

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摘要

The microbial production of biofuels is a promising avenue for the development of viable processes for the generation of fuels from sustainable resources. In order to become cost and energy effective, these processes must utilize organisms that can be optimized to efficiently produce candidate fuels from a variety of feedstocks. Escherichia coli has become a promising host organism for the microbial production of biofuels in part due to the ease at which this organism can be manipulated. Advancements in metabolic engineering and synthetic biology have led to the ability to efficiently engineer E. coli as a biocatalyst for the production of a wide variety of potential biofuels from several biomass constituents. This review focuses on recent efforts devoted to engineering E. coli for the production of biofuels, with emphasis on the key aspects of both the utilization of a variety of substrates as well as the synthesis of several promising biofuels. Strategies for the efficient utilization of carbohydrates, carbohydrate mixtures, and noncarbohydrate carbon sources will be discussed along with engineering efforts for the exploitation of both fermentative and nonfermentative pathways for the production of candidate biofuels such as alcohols and higher carbon biofuels derived from fatty acid and isoprenoid pathways. Continued advancements in metabolic engineering and synthetic biology will help improve not only the titers, yields, and productivities of biofuels discussed herein, but also increase the potential range of compounds that can be produced.
机译:生物燃料的微生物生产是开发可行方法以从可持续资源生产燃料的有希望的途径。为了使成本和能源效率更高,这些过程必须利用可以优化的生物体,以有效地从各种原料中生产候选燃料。大肠杆菌已成为微生物生产生物燃料的有希望的宿主生物,部分原因是该生物易于操作。代谢工程学和合成生物学的进步已导致能够有效地改造大肠杆菌作为一种生物催化剂,以从几种生物质成分生产多种潜在生物燃料的能力。这篇综述着重于最近致力于工程化大肠杆菌以生产生物燃料的工作,重点是利用各种底物以及合成几种有前途的生物燃料的关键方面。将讨论有效利用碳水化合物,碳水化合物混合物和非碳水化合物碳源的策略,以及利用发酵和非发酵途径生产候选生物燃料(例如醇和衍生自脂肪酸和类异戊二烯的高级碳生物燃料)的工程努力。途径。代谢工程和合成生物学的持续进步不仅将有助于改善本文讨论的生物燃料的滴度,产量和生产率,而且还将增加可能生产的化合物的范围。

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