Exploring metabolic engineering design principles for the photosynthetic production of lactic acid by Synechocystis sp PCC6803

被引:113
|
作者
Angermayr, S. Andreas [1 ,2 ]
van der Woude, Aniek D. [3 ]
Correddu, Danilo [1 ,2 ,3 ]
Vreugdenhil, Angie [3 ]
Verrone, Valeria [1 ,2 ]
Hellingwerf, Klaas J. [1 ,2 ,3 ]
机构
[1] Univ Amsterdam, Swammerdam Inst Life Sci, Mol Microbial Physiol Grp, NL-1098 XH Amsterdam, Netherlands
[2] Univ Amsterdam, Netherlands Inst Syst Biol, NL-1098 XH Amsterdam, Netherlands
[3] Photanol BV, Amsterdam, Netherlands
来源
关键词
Cyanobacteria; L-lactic acid production; Bioplastic; Metabolic engineering; Microbial cell factory; Lactate dehydrogenase; Pyruvate kinase; Control coefficient; SP STRAIN PCC-6803; PYRUVATE-KINASE; LACTATE-DEHYDROGENASES; CARBON-DIOXIDE; ETHANOL-PRODUCTION; SYNTHETIC BIOLOGY; CYANOBACTERIUM; ENZYME; GENE; PURIFICATION;
D O I
10.1186/1754-6834-7-99
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: Molecular engineering of the intermediary physiology of cyanobacteria has become important for the sustainable production of biofuels and commodity compounds from CO2 and sunlight by "designer microbes." The chemical commodity product L-lactic acid can be synthesized in one step from a key intermediary metabolite of these organisms, pyruvate, catalyzed by a lactate dehydrogenase. Synthetic biology engineering to make "designer microbes" includes the introduction and overexpression of the product-forming biochemical pathway. For further optimization of product formation, modifications in the surrounding biochemical network of intermediary metabolism have to be made. Results: To improve light-driven L-lactic acid production from CO2, we explored several metabolic engineering design principles, using a previously engineered L-lactic acid producing mutant strain of Synechocystis sp. PCC6803 as the benchmark. These strategies included: (i) increasing the expression level of the relevant product-forming enzyme, lactate dehydrogenase (LDH), for example, via expression from a replicative plasmid; (ii) co-expression of a heterologous pyruvate kinase to increase the flux towards pyruvate; and (iii) knockdown of phosphoenolpyruvate carboxylase to decrease the flux through a competing pathway (from phosphoenolpyruvate to oxaloacetate). In addition, we tested selected lactate dehydrogenases, some of which were further optimized through site-directed mutagenesis to improve the enzyme's affinity for the co-factor nicotinamide adenine dinucleotide phosphate (NADPH). The carbon partitioning between biomass and lactic acid was increased from about 5% to over 50% by strain optimization. Conclusion: An efficient photosynthetic microbial cell factory will display a high rate and extent of conversion of substrate (CO2) into product (here: L-lactic acid). In the existing CO2-based cyanobacterial cell factories that have been described in the literature, by far most of the control over product formation resides in the genetically introduced fermentative pathway. Here we show that a strong promoter, in combination with increased gene expression, can take away a significant part of the control of this step in lactic acid production from CO2. Under these premises, modulation of the intracellular precursor, pyruvate, can significantly increase productivity. Additionally, production enhancement is achieved by protein engineering to increase co-factor specificity of the heterologously expressed LDH.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] AN AROA HOMOLOG FROM SYNECHOCYSTIS SP PCC6803
    DALLACHIESA, M
    MAYERS, SR
    MASKELL, DJ
    NIXON, PJ
    BARBER, J
    GENE, 1994, 144 (01) : 145 - 146
  • [32] Metabolic Engineering of Synechocystis sp PCC 6803 for Production of the Plant Diterpenoid Manoyl Oxide
    Englund, Elias
    Andersen-Ranberg, Johan
    Miao, Rui
    Hamberger, Bjorn
    Lindberg, Pia
    ACS SYNTHETIC BIOLOGY, 2015, 4 (12): : 1270 - 1278
  • [33] Transcriptomic response to prolonged ethanol production in the cyanobacterium Synechocystis sp PCC6803
    Dienst, Dennis
    Georg, Jens
    Abts, Thomas
    Jakorew, Lew
    Kuchmina, Ekaterina
    Boerner, Thomas
    Wilde, Annegret
    Duehring, Ulf
    Enke, Heike
    Hess, Wolfgang R.
    BIOTECHNOLOGY FOR BIOFUELS, 2014, 7
  • [34] Modification of carbon partitioning to enhance PHB production in Synechocystis sp PCC6803
    Wu, GF
    Shen, ZY
    Wu, QY
    ENZYME AND MICROBIAL TECHNOLOGY, 2002, 30 (06) : 710 - 715
  • [35] Enzymatic and physiological characterization of fatty acid activation in Synechocystis sp PCC6803
    Gao, Qianqian
    Tan, Xiaoming
    Lu, Xuefeng
    JOURNAL OF BASIC MICROBIOLOGY, 2013, 53 (10) : 848 - 855
  • [36] Chirality Matters: Synthesis and Consumption of the D-Enantiomer of Lactic Acid by Synechocystis sp Strain PCC6803
    Angermayr, S. Andreas
    van der Woude, Aniek D.
    Correddu, Danilo
    Kern, Ramona
    Hagemann, Martin
    Hellingwerf, Klaas J.
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2016, 82 (04) : 1295 - 1304
  • [37] Digalactosyldiacylglycerol is required for better photosynthetic growth of Synechocystis sp PCC6803 under phosphate limitation
    Awai, Koichiro
    Watanabe, Hideo
    Benning, Christoph
    Nishida, Ikuo
    PLANT AND CELL PHYSIOLOGY, 2007, 48 (11) : 1517 - 1523
  • [38] Identification of thylakoid membrane thermal transitions in Synechocystis sp. PCC6803 photosynthetic mutants
    Hajnalka Laczkó-Dobos
    Svetla J. Todinova
    Özge Sözer
    Josef Komenda
    Mihály Kis
    Anna Sallai
    Anelia G. Dobrikova
    Bettina Ughy
    Mónika Debreczeny
    Zoltán Gombos
    Emilia L. Apostolova
    Ildikó Domonkos
    Photosynthesis Research, 2011, 107 : 237 - 246
  • [39] Reconstruction and verification of a genome-scale metabolic model for Synechocystis sp PCC6803
    Yoshikawa, Katsunori
    Kojima, Yuta
    Nakajima, Tsubasa
    Furusawa, Chikara
    Hirasawa, Takashi
    Shimizu, Hiroshi
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2011, 92 (02) : 347 - 358
  • [40] Structural feature of the genome of the cyanobacterium, Synechocystis sp PCC6803
    Tabata, S
    PHOTOSYNTHESIS: MECHANISMS AND EFFECTS, VOLS I-V, 1998, : 2827 - 2833