4.7 Review

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

Journal

APPLIED MICROBIOLOGY AND BIOTECHNOLOGY
Volume 86, Issue 2, Pages 419-434

Publisher

SPRINGER
DOI: 10.1007/s00253-010-2446-1

Keywords

Synthetic biology; Metabolic engineering; Biofuels production; Escherichia coli; Biofuels

Funding

  1. U.S. National Science Foundation [CBET-0645188, BES-0331388/BES-0601549]
  2. U.S. Department of Agriculture Cooperative State Research, Education and Extension Service [2005-35504-16698]

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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.

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