Engineering Yarrowia lipolytica for sustainable ricinoleic acid production: A pathway to free fatty acid synthesis

被引:3
|
作者
Park, Kwanghyun [1 ]
Hahn, Ji-Sook [1 ]
机构
[1] Seoul Natl Univ, Inst Chem Proc, Sch Chem & Biol Engn, Seoul 08826, South Korea
基金
新加坡国家研究基金会;
关键词
Castor bean oil; CDP-DAG pathway; Fatty acid elongase; Free fatty acids (FFAs); Phosphatidic acid phosphatase; Phosphatidylcholine; Triton X-100; PHOSPHOLIPID-METABOLISM; LIPID-ACCUMULATION; YEAST; HYDROXYLASE; CASTOR; OVEREXPRESSION; PURIFICATION; EXPRESSION; INCREASES; TOXICITY;
D O I
10.1016/j.ymben.2023.12.002
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
Ricinoleic acid (C18:1-OH, RA) is a valuable hydroxy fatty acid with versatile applications. The current industrial source of RA relies on the hydrolysis of castor bean oil. However, the coexistence of the toxic compound ricin and the unstable supply of this plant have led to an exploration of promising alternatives: generating RA in heterologous plants or microorganisms. In this study, we engineered the oleaginous yeast Yarrowia lipolytica to produce RA in the form of free fatty acids (FFA). First, we overexpressed fungal Delta 12 oleate hydroxylase gene (CpFAH12) from Claviceps purpurea while deleting genes related to fatty acid degradation (MEF1 and PEX10) and oleic acid desaturation (FAD2). Since Delta 12 oleate hydroxylase converts oleic acid (C18:1) located at the sn-2 position of phosphatidylcholine (PC), we next focused on increasing the PC pool containing oleic acid. This objective was achieved thorough implementing metabolic engineering strategies designed to enhance the biosynthesis of PC and C18 fatty acids. To increase the PC pool, we redirected the flux towards phospholipid biosynthesis by deleting phosphatidic acid phosphatase genes (PAH1 and APP1) and diacylglycerol acyltransferase gene (DGA1), involved in the production of diacylglycerol and triacylglycerol, respectively. Furthermore, the PC biosynthesis via the CDP-DAG pathway was enhanced through the overexpression of CDS1, PSD1, CHO2, and OPI3 genes. Subsequently, to increase the oleic acid content within PC, we overexpressed the heterologous fatty acid elongase gene (MaC16E) involved in the conversion of C16 to C18 fatty acids. As RA production titer escalated, the produced RA was mainly found in the FFA form, leading to cell growth inhibition. The growth inhibition was mitigated by inducing RA secretion via Triton X-100 treatment, a process that simultaneously amplified RA production by redirecting flux towards RA synthesis. The final engineered strain JHYL-R146 produced 2.061 g/L of free RA in a medium treated with 5% Triton X-100, constituting 74% of the total FFAs produced. Generating free RA offers the added benefit of bypassing the hydrolysis stage required when employing castor bean oil as an RA source. This achievement represents the highest level of RA synthesis from glucose reported thus far, underscoring the potential of Y. lipolytica as a host for sustainable RA production.
引用
收藏
页码:197 / 209
页数:13
相关论文
共 50 条
  • [1] Metabolic engineering for ricinoleic acid production in the oleaginous yeast Yarrowia lipolytica
    A. Beopoulos
    J. Verbeke
    F. Bordes
    M. Guicherd
    M. Bressy
    A. Marty
    Jean-Marc Nicaud
    [J]. Applied Microbiology and Biotechnology, 2014, 98 : 251 - 262
  • [2] Metabolic engineering for ricinoleic acid production in the oleaginous yeast Yarrowia lipolytica
    Beopoulos, A.
    Verbeke, J.
    Bordes, F.
    Guicherd, M.
    Bressy, M.
    Marty, A.
    Nicaud, Jean-Marc
    [J]. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2014, 98 (01) : 251 - 262
  • [3] Engineering the Lipid and Fatty Acid Metabolism in Yarrowia lipolytica for Sustainable Production of High Oleic Oils
    Wang, Kaifeng
    Shi, Tian-Qiong
    Wang, Jinpeng
    Wei, Ping
    Ledesma-Amaro, Rodrigo
    Ji, Xiao-Jun
    [J]. ACS SYNTHETIC BIOLOGY, 2022, 11 (04): : 1542 - 1554
  • [4] Metabolic engineering of Yarrowia lipolytica for itaconic acid production
    Blazeck, John
    Hill, Andrew
    Jamoussi, Mariam
    Pan, Anny
    Miller, Jarrett
    Alper, Hal S.
    [J]. METABOLIC ENGINEERING, 2015, 32 : 66 - 73
  • [5] Engineering Yarrowia lipolytica for efficient γ-linolenic acid production
    Sun, Mei-Li
    Madzak, Catherine
    Liu, Hu-Hu
    Song, Ping
    Ren, Lu-Jing
    Huang, He
    Ji, Xiao-Jun
    [J]. BIOCHEMICAL ENGINEERING JOURNAL, 2017, 117 : 172 - 180
  • [6] Engineering Yarrowia lipolytica for arachidonic acid production through rapid assembly of metabolic pathway
    Liu, Hu-Hu
    Madzak, Catherine
    Sun, Mei-Li
    Ren, Lu-Jing
    Song, Ping
    Huang, He
    Ji, Xiao-Jun
    [J]. BIOCHEMICAL ENGINEERING JOURNAL, 2017, 119 : 52 - 58
  • [7] Optimization of odd chain fatty acid production by Yarrowia lipolytica
    Park, Young-Kyoung
    Dulermo, Thierry
    Ledesma-Amaro, Rodrigo
    Nicaud, Jean-Marc
    [J]. BIOTECHNOLOGY FOR BIOFUELS, 2018, 11
  • [8] Optimization of odd chain fatty acid production by Yarrowia lipolytica
    Young-Kyoung Park
    Thierry Dulermo
    Rodrigo Ledesma-Amaro
    Jean-Marc Nicaud
    [J]. Biotechnology for Biofuels, 11
  • [9] Engineering the Yeast Yarrowia lipolytica for Production of Polylactic Acid Homopolymer
    Lajus, Sophie
    Dusseaux, Simon
    Verbeke, Jonathan
    Rigouin, Coraline
    Guo, Zhongpeng
    Fatarova, Maria
    Bellvert, Floriant
    Borsenberger, Vinciane
    Bressy, Melusine
    Nicaud, Jean-Marc
    Marty, Alain
    Bordes, Florence
    [J]. FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2020, 8
  • [10] Metabolic engineering of Yarrowia lipolytica for heterologous oleanolic acid production
    Li, Dashuai
    Wu, Yufen
    Wei, Panpan
    Gao, Xiao
    Li, Man
    Zhang, Chuanbo
    Zhou, Zhijiang
    Lu, Wenyu
    [J]. CHEMICAL ENGINEERING SCIENCE, 2020, 218