Engineering Critical Enzymes and Pathways for Improved Triterpenoid Biosynthesis in Yeast

被引:30
|
作者
Guo, Hao [1 ]
Wang, Huiyan [1 ]
Huo, Yi-Xin [1 ,2 ,3 ]
机构
[1] Beijing Inst Technol, Sch Life Sci, Key Lab Mol Med & Biotherapy, Beijing 100081, Peoples R China
[2] SIP UCLA Inst Technol Adv, Suzhou 215123, Peoples R China
[3] Chinese Acad Agr Sci, Tobacco Res Inst, Qingdao 266101, Peoples R China
来源
ACS SYNTHETIC BIOLOGY | 2020年 / 9卷 / 09期
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
synthetic biology; triterpenoid; oxidosqualene cyclase; cytochrome P450; UDP-glycosyltransferase; yeast; BETA-AMYRIN SYNTHASE; HIGH-LEVEL PRODUCTION; OXIDOSQUALENE CYCLASES; SACCHAROMYCES-CEREVISIAE; FUNCTIONAL EXPRESSION; MOLECULAR-CLONING; UDP-GLYCOSYLTRANSFERASES; ARABIDOPSIS-THALIANA; MULTIFUNCTIONAL CYTOCHROME-P450; COMBINATORIAL BIOSYNTHESIS;
D O I
10.1021/acssynbio.0c00124
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Triterpenoids represent a diverse group of phytochemicals that are widely distributed in the plant kingdom and have many biological activities. The heterologous production of triterpenoids in Saccharomyces cerevisiae has been successfully implemented by introducing various triterpenoid biosynthetic pathways. By engineering related enzymes as well as through yeast metabolism, the yield of various triterpenoids is significantly improved from the milligram per liter scale to the gram per liter scale. This achievement demonstrates that engineering critical enzymes is considered a potential strategy to overcome the main hurdles of the industrial application of these potent natural products. Here, we review strategies for designing enzymes to improve the yield of triterpenoids in S. cerevisiae in terms of three main aspects: 1, elevating the supply of the precursor 2,3-oxidosqualene; 2, optimizing triterpenoid-involved reactions; and 3, lowering the competition of the native sterol pathway. Then, we provide challenges and prospects for further enhancing triterpenoid production in S. cerevisiae.
引用
收藏
页码:2214 / 2227
页数:14
相关论文
共 50 条
  • [21] Engineering cofactor supply and recycling to drive phenolic acid biosynthesis in yeast
    Chen, Ruibing
    Gao, Jiaoqi
    Yu, Wei
    Chen, Xianghui
    Zhai, Xiaoxin
    Chen, Yu
    Zhang, Lei
    Zhou, Yongjin J.
    NATURE CHEMICAL BIOLOGY, 2022, 18 (05) : 520 - +
  • [22] Engineering 1-Alkene Biosynthesis and Secretion by Dynamic Regulation in Yeast
    Zhou, Yongjin J.
    Hu, Yating
    Zhu, Zhiwei
    Siewers, Verena
    Nielsen, Jens
    ACS SYNTHETIC BIOLOGY, 2018, 7 (02): : 584 - 590
  • [23] Advances in engineering methylotrophic yeast for biosynthesis of valuable chemicals from methanol
    Duan, Xingpeng
    Gao, Jiaoqi
    Zhou, Yongjin J.
    CHINESE CHEMICAL LETTERS, 2018, 29 (05) : 681 - 686
  • [24] Improved secretory expression of lignocellulolytic enzymes in Kluyveromyces marxianus by promoter and signal sequence engineering
    Zhou, Jungang
    Zhu, Peixia
    Hu, Xiaoyue
    Lu, Hong
    Yu, Yao
    BIOTECHNOLOGY FOR BIOFUELS, 2018, 11
  • [25] Thiol Redox Sensitivity of Two Key Enzymes of Heme Biosynthesis and Pentose Phosphate Pathways: Uroporphyrinogen Decarboxylase and Transketolase
    McDonagh, Brian
    Rafael Pedrajas, Jose
    Alicia Padilla, C.
    Antonio Barcena, Jose
    OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2013, 2013
  • [26] Systematic Engineering for Improved Carbon Economy in the Biosynthesis of Polyhydroxyalkanoates and Isoprenoids
    Zou, Huibin
    Zhang, Tongtong
    Li, Lei
    Huang, Jingling
    Zhang, Nan
    Shi, Mengxun
    Hao, He
    Xian, Mo
    MATERIALS, 2018, 11 (08)
  • [27] Improved production of human hemoglobin in yeast by engineering hemoglobin degradation
    Ishchuk, Olena P.
    Frost, August T.
    Muniz-Paredes, Facundo
    Matsumoto, Saki
    Laforge, Nathalie
    Eriksson, Nelida Leiva
    Martinez, Jose L.
    Petranovic, Dina
    METABOLIC ENGINEERING, 2021, 66 : 259 - 267
  • [28] Transcriptome-enabled discovery and functional characterization of enzymes related to (2S)-pinocembrin biosynthesis from Ornithogalum caudatum and their application for metabolic engineering
    Guo, Lei
    Chen, Xi
    Li, Li-Na
    Tang, Wei
    Pan, Yi-Ting
    Kong, Jian-Qiang
    MICROBIAL CELL FACTORIES, 2016, 15
  • [29] Synthetic biology: lessons from engineering yeast MAPK signalling pathways
    Furukawa, Kentaro
    Hohmann, Stefan
    MOLECULAR MICROBIOLOGY, 2013, 88 (01) : 5 - 19
  • [30] Agarose degradation for utilization: Enzymes, pathways, metabolic engineering methods and products
    Jiang, Chengcheng
    Liu, Zhen
    Cheng, Danyang
    Mao, Xiangzhao
    BIOTECHNOLOGY ADVANCES, 2020, 45