L-Erythrulose production with a multideletion strain of Gluconobacter oxydans

被引:15
|
作者
Burger, Christian [1 ]
Kessler, Constantin [1 ]
Gruber, Simone [2 ]
Ehrenreich, Armin [2 ]
Liebl, Wolfgang [2 ]
Weuster-Botz, Dirk [1 ]
机构
[1] Tech Univ Munich, Inst Biochem Engn, Boltzmannstr 15, D-85748 Garching, Germany
[2] Tech Univ Munich, Chair Microbiol, Emil Ramann Str 4, D-85354 Freising Weihenstephan, Germany
关键词
Gluconobacter oxydans; Biotransformation; L-erythrulose; Resting cells; Continuous process; Cell retention; PENTOSE-PHOSPHATE; GENOME SEQUENCE; L-ERYTHROSE; ACID; GLYCEROL; DIHYDROXYACETONE; FERMENTATION; DEHYDROGENASE; OPTIMIZATION; BIOCHEMISTRY;
D O I
10.1007/s00253-019-09824-w
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
Many ketoses or organic acids can be produced by membrane-associated oxidation with Gluconobacter oxydans. In this study, the oxidation of meso-erythritol to L-erythrulose was investigated with the strain G. oxydans 621Hupp BP.8, a multideletion strain lacking the genes for eight membrane-bound dehydrogenases. First batch biotransformations with growing cells showed re-consumption of L-erythrulose by G. oxydans 621Hupp BP.8 in contrast to resting cells. The batch biotransformation with 2.8gL(-1) resting cells of G. oxydans 621Hupp BP.8 in a DO-controlled stirred-tank bioreactor resulted in 242gL(-1) L-erythrulose with a product yield of 99% (w/w) and a space-time yield of 10gL(-1)h(-1). Reaction engineering studies showed substrate excess inhibition as well as product inhibition of G. oxydans 621Hupp BP.8 in batch biotransformations. In order to overcome substrate inhibition, a continuous membrane bioreactor with full cell retention was applied for meso-erythritol oxidation with resting cells of G. oxydans 621Hupp BP.8. At a mean hydraulic residence time of 2h, a space-time yield of 27gL(-1)h(-1) L-erythrulose was achieved without changing the product yield of 99% (w/w) resulting in a cell-specific product yield of up to 4.4g(P)g(X)(-1) in the steady state. The product concentration (54gL(-1) L-erythrulose) was reduced in the continuous biotransformation process compared with the batch process to avoid product inhibition.
引用
收藏
页码:4393 / 4404
页数:12
相关论文
共 50 条
  • [41] Boron based separations for in situ recovery of L-erythrulose from transketolase-catalyzed condensation
    Chauhan, RP
    Powell, LW
    Woodley, JM
    BIOTECHNOLOGY AND BIOENGINEERING, 1997, 56 (03) : 345 - 351
  • [42] SYNTHESIS OF L-GLYCERO-TETRULOSE 1-PHOSPHATE (L-ERYTHRULOSE 1-PHOSPHATE)
    GILLETT, JW
    BALLOU, CE
    BIOCHEMISTRY, 1963, 2 (03) : 547 - &
  • [43] Relocation of dehydroquinate dehydratase to the periplasmic space improves dehydroshikimate production with Gluconobacter oxydans strain NBRC3244
    Nakamura, Kentaro
    Nagaki, Kakeru
    Matsutani, Minenosuke
    Adachi, Osao
    Kataoka, Naoya
    Ano, Yoshitaka
    Theeragool, Gunjana
    Matsushita, Kazunobu
    Yakushi, Toshiharu
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2021, 105 (14-15) : 5883 - 5894
  • [44] Relocation of dehydroquinate dehydratase to the periplasmic space improves dehydroshikimate production with Gluconobacter oxydans strain NBRC3244
    Kentaro Nakamura
    Kakeru Nagaki
    Minenosuke Matsutani
    Osao Adachi
    Naoya Kataoka
    Yoshitaka Ano
    Gunjana Theeragool
    Kazunobu Matsushita
    Toshiharu Yakushi
    Applied Microbiology and Biotechnology, 2021, 105 : 5883 - 5894
  • [45] Microbial Production of Xylitol from D-arabitol by Gluconobacter Oxydans
    Zhang, Huanhuan
    Yun, Junhua
    Magocha, Tinashe Archbold
    Yang, Miaomiao
    Xue, Yanbo
    Qi, Xianghui
    PROCEEDINGS OF THE 2016 INTERNATIONAL CONFERENCE ON BIOLOGICAL ENGINEERING AND PHARMACY (BEP 2016), 2016, 3 : 110 - 112
  • [46] ACETATE PRODUCTION FROM LACTATE AND GLUCOSE FERMENTATION BY GLUCONOBACTER-OXYDANS
    POGET, C
    DUBUIS, B
    VONSTOCKAR, U
    BIOTECHNOLOGY LETTERS, 1994, 16 (12) : 1293 - 1298
  • [47] Dental plaque and application of anti-cariogenic sweeteners such as D-erythrose and L-erythrulose
    Elseviers, M
    De Wannemaeker, B
    Röper, H
    AGRO FOOD INDUSTRY HI-TECH, 1999, 10 (03): : 15 - 19
  • [48] Cloning of genes coding for L-sorbose and L-sorbosone dehydrogenases from Gluconobacter oxydans and microbial production of 2-Keto-L-Gulonate, a precursor of L-ascorbic acid, in a recombinant G-oxydans strain
    Saito, Y
    Ishii, Y
    Hayashi, H
    Imao, Y
    Akashi, T
    Yoshikawa, K
    Noguchi, Y
    Soeda, S
    Yoshida, M
    Niwa, M
    Hosoda, J
    Shimomura, K
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1997, 63 (02) : 454 - 460
  • [49] Complete Genome Sequence of the Industrial Strain Gluconobacter oxydans H24
    Ge, Xin
    Zhao, Yan
    Hou, Wei
    Zhang, Weicai
    Chen, Weiwei
    Wang, Jianhua
    Zhao, Nan
    Lin, Jian
    Wang, Wenxi
    Chen, Mengxia
    Wang, Qingge
    Jiao, Yinghui
    Yuan, Zhigang
    Xiong, Xianghua
    GENOME ANNOUNCEMENTS, 2013, 1 (01)
  • [50] Achieving high yield production of acetic acid by Gluconobacter oxydans in bioreactor
    Najafabady, Nima Montazeri
    Mobasher, Mohammad Ali
    Ghasemian, Abdollah
    Amini, Sara Rasoul
    Ghasemi, Younes
    CURRENT OPINION IN BIOTECHNOLOGY, 2011, 22 : S56 - S56