Production of extracellular fatty acid using engineered Escherichia coli

被引:61
|
作者
Liu, Hui [1 ]
Yu, Chao [1 ]
Feng, Dexin [1 ]
Cheng, Tao [1 ]
Meng, Xin [1 ]
Liu, Wei [1 ]
Zou, Huibin [1 ]
Xian, Mo [1 ]
机构
[1] Chinese Acad Sci, Qingdao Inst Bioenergy & Bioproc Technol, Key Lab Biofuel, Qingdao 266101, Peoples R China
来源
MICROBIAL CELL FACTORIES | 2012年 / 11卷
关键词
Extracellular fatty acid; Extraction; Cultivation; Escherichia coli; Strain improvement; BIODIESEL PRODUCTION; PERIPLASMIC ENZYME; COENZYME-A; OVERPRODUCTION; THIOESTERASE; PROTEINS; GENE; BIOSYNTHESIS; CARBOXYLASE; EXPRESSION;
D O I
10.1186/1475-2859-11-41
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: As an alternative for economic biodiesel production, the microbial production of extracellular fatty acid from renewable resources is receiving more concerns recently, since the separation of fatty acid from microorganism cells is normally involved in a series of energy-intensive steps. Many attempts have been made to construct fatty acid producing strains by targeting genes in the fatty acid biosynthetic pathway, while few studies focused on the cultivation process and the mass transfer kinetics. Results: In this study, both strain improvements and cultivation process strategies were applied to increase extracellular fatty acid production by engineered Escherichia coli. Our results showed overexpressing 'TesA and the deletion of fadL in E. coli BL21 (DE3) improved extracellular fatty acid production, while deletion of fadD didn't strengthen the extracellular fatty acid production for an undetermined mechanism. Moreover, the cultivation process controls contributed greatly to extracellular fatty acid production with respect to titer, cell growth and productivity by adjusting the temperature, adding ampicillin and employing on-line extraction. Under optimal conditions, the E. coli strain (pACY-'tesA-Delta fadL) produced 4.8 g L-1 extracellular fatty acid, with the specific productivity of 0.02 g h(-1) g(-1) dry cell mass, and the yield of 4.4% on glucose, while the ratios of cell-associated fatty acid versus extracellular fatty acid were kept below 0.5 after 15 h of cultivation. The fatty acids included C12:1, C12:0, C14:1, C14:0, C16:1, C16:0, C18:1, C18:0. The composition was dominated by C14 and C16 saturated and unsaturated fatty acids. Using the strain pACY-'tesA, similar results appeared under the same culture conditions and the titer was also much higher than that ever reported previously, which suggested that the supposedly superior strain did not necessarily perform best for the efficient production of desired product. The strain pACY-'tesA could also be chosen as the original strain for the next genetic manipulations. Conclusions: The general strategy of metabolic engineering for the extracellular fatty acid production should be the cyclic optimization between cultivation performance and strain improvements. On the basis of our cultivation process optimization, strain improvements should be further carried out for the effective and cost-effective production process.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Efficient Odd Straight Medium Chain Free Fatty Acid Production by Metabolically Engineered Escherichia Coli
    Wu, Hui
    San, Ka-Yiu
    BIOTECHNOLOGY AND BIOENGINEERING, 2014, 111 (11) : 2209 - 2219
  • [32] Production of Odd-Carbon Dicarboxylic Acids in Escherichia coli Using an Engineered Biotin-Fatty Acid Biosynthetic Pathway
    Haushalter, Robert W.
    Phelan, Ryan M.
    Hoh, Kristina M.
    Su, Cindy
    Wang, George
    Baidoo, Edward E. K.
    Keasling, Jay D.
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2017, 139 (13) : 4615 - 4618
  • [33] High production of fatty alcohols in Escherichia coli with fatty acid starvation
    Liu, Yilan
    Chen, Sha
    Chen, Jinjin
    Zhou, Jiemin
    Wang, Yanyan
    Yang, Maohua
    Qi, Xianni
    Xing, Jianmin
    Wang, Qinhong
    Ma, Yanhe
    MICROBIAL CELL FACTORIES, 2016, 15
  • [34] High production of fatty alcohols in Escherichia coli with fatty acid starvation
    Yilan Liu
    Sha Chen
    Jinjin Chen
    Jiemin Zhou
    Yanyan Wang
    Maohua Yang
    Xianni Qi
    Jianmin Xing
    Qinhong Wang
    Yanhe Ma
    Microbial Cell Factories, 15
  • [35] The production of ω-hydroxy palmitic acid using fatty acid metabolism and cofactor optimization in Escherichia coli
    Changmin Sung
    Eunok Jung
    Kwon-Young Choi
    Jin-hyung Bae
    Minsuk Kim
    Joonwon Kim
    Eun-Jung Kim
    Pyoung Il Kim
    Byung-Gee Kim
    Applied Microbiology and Biotechnology, 2015, 99 : 6667 - 6676
  • [36] The production of ω-hydroxy palmitic acid using fatty acid metabolism and cofactor optimization in Escherichia coli
    Sung, Changmin
    Jung, Eunok
    Choi, Kwon-Young
    Bae, Jin-hyung
    Kim, Minsuk
    Kim, Joonwon
    Kim, Eun-Jung
    Kim, Pyoung Il
    Kim, Byung-Gee
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2015, 99 (16) : 6667 - 6676
  • [37] Enhanced production of nonanedioic acid from nonanoic acid by engineered Escherichia coli
    Lee, Yongjoo
    Sathesh-Prabu, Chandran
    Kwak, Geun Hwa
    Bang, Ina
    Jung, Hyun Wook
    Kim, Donghyuk
    Lee, Sung Kuk
    BIOTECHNOLOGY JOURNAL, 2022, 17 (03)
  • [38] Production of Curcuminoids in Engineered Escherichia coli
    Kim, Eun Ji
    Cha, Mi Na
    Kim, Bong-Gyu
    Ahn, Joong-Hoon
    JOURNAL OF MICROBIOLOGY AND BIOTECHNOLOGY, 2017, 27 (05) : 975 - 982
  • [39] Production of acetol from glycerol using engineered Escherichia coli
    Zhu, Hongliang
    Yi, Xianyang
    Liu, Yi
    Hu, Hongbo
    Wood, Thomas K.
    Zhang, Xuehong
    BIORESOURCE TECHNOLOGY, 2013, 149 : 238 - 243
  • [40] Production of glycerate from glucose using engineered Escherichia coli
    Long, Bui Hoang Dang
    Matsubara, Kotaro
    Tanaka, Tomonari
    Ohara, Hitomi
    Aso, Yuji
    JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2023, 135 (05) : 375 - 381