Regulation of secondary metabolite biosynthesis in Monascus purpureus via cofactor metabolic engineering strategies

被引:26
|
作者
Liu, Jun [1 ]
Wu, Jingyan [1 ]
Cai, Xinru [1 ]
Zhang, Song [1 ]
Liang, Ying [1 ]
Lin, Qinlu [1 ]
机构
[1] Cent South Univ Forestry & Technol, Natl Engn Lab Deep Proc Rice & By Prod, Hunan Key Lab Grain Oil Deep Proc & Qual Control, Coll Food Sci & Engn, Changsha 410004, Hunan, Peoples R China
基金
中国国家自然科学基金;
关键词
M; purpureus; Electrolytic stimulation; Cofactor; Yellow monascus pigment; CLOSTRIDIUM-BEIJERINCKII; CITRININ PRODUCTION; INCREASING NADH; PIGMENTS; GENE; ACID; FERMENTATION; FUNGUS;
D O I
10.1016/j.fm.2020.103689
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
This study investigated the effects of cofactor metabolism on secondary metabolite production in M. purpureus through the application of different cofactor engineering strategies. Total pigment production dramatically increased by 39.08% and 40.89%, and yellow pigment production increased by 74.62% and 114.06% after the addition of 1.0 mg/L of the exogenous cofactor reagents methyl viologen and rotenone, respectively, in submerged batch-fermentation. The extracellular red pigment tone changed to yellow with the application of electrolytic stimulation at 800 mV/cm(2), but almost no citrinin production was detected. In addition, the total pigment, yellow pigment and citrinin production increased by 35.46%, 54.89% and 6.27% after disruption of the nuol gene that encodes NADH-quinone oxidoreductase, respectively. Thus, cofactor metabolic engineering strategies could be extended to the industrial production of Monascus pigment or high yellow pigment with free citrinin production.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Metabolic engineering of plant secondary metabolite pathways for the production of fine chemicals
    Verpoorte, R
    van der Heijden, R
    ten Hoopen, HJG
    Memelink, J
    BIOTECHNOLOGY LETTERS, 1999, 21 (06) : 467 - 479
  • [42] Metabolic engineering: an effective approach for optimal production of secondary metabolite compounds
    Dolatsara, Ahadi E.
    Salami, S.
    Shokrpour, M.
    Naghavi, M.
    PLANTA MEDICA, 2011, 77 (12) : 1284 - 1284
  • [43] Rice Secondary Metabolites: Structures, Roles, Biosynthesis, and Metabolic Regulation
    Wang, Weixuan
    Li, Yuying
    Dang, Pengqin
    Zhao, Siji
    Lai, Daowan
    Zhou, Ligang
    MOLECULES, 2018, 23 (12):
  • [44] Ginseng metabolic engineering: Regulation of genes related to ginsenoside biosynthesis
    Kim, Yun-Soo
    Han, Jung-Yeon
    Lim, Soon
    Choi, Yong-Eui
    JOURNAL OF MEDICINAL PLANTS RESEARCH, 2009, 3 (13): : 1270 - 1276
  • [45] Advances in biosynthesis, regulation, and metabolic engineering of plant specialized terpenoids
    Nagegowda, Dinesh A.
    Gupta, Priyanka
    PLANT SCIENCE, 2020, 294
  • [46] Metabolic engineering provides insight into the regulation of thiamin biosynthesis in plants
    Strobbe, Simon
    Verstraete, Jana
    Stove, Christophe
    Van Der Straeten, Dominique
    PLANT PHYSIOLOGY, 2021, 186 (04) : 1832 - 1847
  • [47] Melanin in fungi: advances in structure, biosynthesis, regulation, and metabolic engineering
    Qin, Yanping
    Xia, Yuxian
    MICROBIAL CELL FACTORIES, 2024, 23 (01)
  • [48] Preliminary exploration of the mechanisms underlying morphology engineering of Monascus purpureus during submerged fermentation via multi-omics approaches
    Zhang, Song
    Zhang, Chenyu
    Liu, Xinyi
    Liu, Jun
    Lin, Qinlu
    Zeng, Xiaofang
    Lu, Dong
    Zhou, Xiang
    LWT-FOOD SCIENCE AND TECHNOLOGY, 2024, 214
  • [49] Regulation and metabolic engineering strategies for permeases of Saccharomyces cerevisiae
    Zhang, Peng
    Chen, Qian
    Fu, Guiming
    Xia, Linglin
    Hu, Xing
    WORLD JOURNAL OF MICROBIOLOGY & BIOTECHNOLOGY, 2019, 35 (07):
  • [50] Regulation and metabolic engineering strategies for permeases of Saccharomyces cerevisiae
    Peng Zhang
    Qian Chen
    Guiming Fu
    linglin Xia
    Xing Hu
    World Journal of Microbiology and Biotechnology, 2019, 35