Escherichia coli as a fatty acid and biodiesel factory: current challenges and future directions

被引:0
|
作者
Ziaur Rahman
Naim Rashid
Javed Nawab
Muhammad Ilyas
Bong Hyun Sung
Sun Chang Kim
机构
[1] Korea Advanced Institute of Science and Technology,Department of Biological Sciences
[2] University of Swat,Department of Environmental and Conservation Sciences
[3] University of Swat,Center for Biotechnology and Microbiology
[4] COMSATS,Department of Chemical Engineering
[5] AWKUM,Department of Microbiology
[6] Korea Research Institute of Bioscience and Biotechnology,Bioenergy and Biochemical Research Center
来源
Environmental Science and Pollution Research | 2016年 / 23卷
关键词
Microbial biofuel; Biodiesel; Fatty acid; Metabolic engineering; Biofuel;
D O I
暂无
中图分类号
学科分类号
摘要
Biodiesel has received widespread attention as a sustainable, environment-friendly, and alternative source of energy. It can be derived from plant, animal, and microbial organisms in the form of vegetable oil, fats, and lipids, respectively. However, biodiesel production from such sources is not economically feasible due to extensive downstream processes, such as trans-esterification and purification. To obtain cost-effective biodiesel, these bottlenecks need to be overcome. Escherichia coli, a model microorganism, has the potential to produce biodiesel directly from ligno-cellulosic sugars, bypassing trans-esterification. In this process, E. coli is engineered to produce biodiesel using metabolic engineering technology. The entire process of biodiesel production is carried out in a single microbial cell, bypassing the expensive downstream processing steps. This review focuses mainly on production of fatty acid and biodiesel in E. coli using metabolic engineering approaches. In the first part, we describe fatty acid biosynthesis in E. coli. In the second half, we discuss bottlenecks and strategies to enhance the production yield. A complete understanding of current developments in E. coli-based biodiesel production and pathway optimization strategies would reduce production costs for biofuels and plant-derived chemicals.
引用
收藏
页码:12007 / 12018
页数:11
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