Substrate selectivity of Gluconobacter oxydans for production of 2,5-diketo-D-gluconic acid and synthesis of 2-keto-L-gulonic acid in a multienzyme system

被引:8
|
作者
Ji, AG
Gao, PJ [1 ]
机构
[1] Shandong Univ, State Key Lab Microbial Technol, Shandong 250100, Peoples R China
[2] Shandong Univ, Dept Pharm, Shandong 250012, Peoples R China
关键词
2-keto-L-gulonic acid; Gluconobacter oxydans; glucose dehydrogenase; 2,5-diketo-D-gluconic acid reductase; 2,5-diketo-D-gluconic acid; L-ascorbic acid; glucose; gluconic acid; NADP(H) regeneration;
D O I
10.1385/ABAB:94:3:213
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Substrate selectivity of Gluconobacter oxydans (ATCC 9937) for 2,5-diketo-D-gluconic acid (2,5-DKG) production was investigated with glucose, gluconic acid, and gluconolactone in different concentrations using a resting-cell system. The results show that gluconic acid was utilized favorably by G. oxydans as substrate to produce 2,5-DKG. The strain was coupled with glucose dehydrogenase (GDH) and 2,5-DKG reductase for synthesis of 2-keto-L-gulonic acid (2-KLG), a direct precursor Of L-ascorbic acid, from glucose. NADP and NADPH were regenerated between GDH and 2,5-DKG reductase. The mole yield of 2-KLG of this multienzyme system was 16.8%. There are three advantages for using the resting cells of G. oxydans to connect GDH with 2,5-DKG reductase for production of 2-KLG: gluconate produced by GDH may immediately be transformed into 2,5-DKG so that a series of problems generally caused by the accumulation of gluconate would be avoided; 2,5-DKG is supplied directly and continuously for 2,5-DKG reductase, so it is unnecessary to take special measures to deal with this unstable substrate as it was in Sonoyama's tandem fermentation process; and NADP(H) was regenerated within the system without any other components or systems.
引用
收藏
页码:213 / 223
页数:11
相关论文
共 50 条
  • [21] High-Throughput Screening of a 2-Keto-L-Gulonic Acid-Producing Gluconobacter oxydans Strain Based on Related Dehydrogenases
    Chen, Yue
    Liu, Li
    Shan, Xiaoyu
    Du, Guocheng
    Zhou, Jingwen
    Chen, Jian
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2019, 7
  • [22] DNA from uncultured organisms as a source of 2,5-diketo-D-gluconic acid reductases
    Eschenfeldt, WH
    Stols, L
    Rosenbaum, H
    Khambatta, ZS
    Quaite-Randall, E
    Wu, S
    Kilgore, DC
    Trent, JD
    Donnelly, MI
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2001, 67 (09) : 4206 - 4214
  • [23] Optimization of pH and temperature in the process of bioconversion of glucose to 2,5-diketo-D-gluconic acid
    Zelic, B
    Pavlovic, N
    Delic, V
    Vasic-Racki, D
    CHEMICAL AND BIOCHEMICAL ENGINEERING QUARTERLY, 2002, 16 (01) : 7 - 11
  • [24] Characterisation of 2,5-diketo-D-gluconic acid reductase from Corynebacterium sp.
    Maremonti, M
    Greco, G
    Wichmann, R
    BIOTECHNOLOGY LETTERS, 1996, 18 (07) : 845 - 850
  • [25] Structural alteration of cofactor specificity in Corynebacterium 2,5-diketo-D-gluconic acid reductase
    Sanli, G
    Banta, S
    Anderson, S
    Blaber, M
    PROTEIN SCIENCE, 2004, 13 (02) : 504 - 512
  • [26] SEPARATION OF ASCORBIC-ACID AND 2-KETO-L-GULONIC ACID
    BAFNA, SL
    PATEL, DJ
    MEHTA, JD
    JOURNAL OF PHARMACEUTICAL SCIENCES, 1972, 61 (08) : 1333 - &
  • [27] MICROBIAL-PRODUCTION OF 2-KETO-L-GULONIC ACID FROM L-SORBOSE AND D-SORBITOL BY GLUCONOBACTER-MELANOGENUS
    SUGISAWA, T
    HOSHINO, T
    MASUDA, S
    NOMURA, S
    SETOGUCHI, Y
    TAZOE, M
    SHINJOH, M
    SOMEHA, S
    FUJIWARA, A
    AGRICULTURAL AND BIOLOGICAL CHEMISTRY, 1990, 54 (05): : 1201 - 1209
  • [28] Fuzzy Logic Based Scheduling for 2-keto-L-gulonic Acid Production
    Cui, Lei
    Xu, Tao
    Wang, Zhifeng
    2018 13TH WORLD CONGRESS ON INTELLIGENT CONTROL AND AUTOMATION (WCICA), 2018, : 1270 - 1274
  • [29] METHYL-ETHER OF 2-KETO-L-GULONIC ACID
    MELENTYEVA, TA
    KNYAZEVA, YM
    TABER, AM
    KHIMIKO-FARMATSEVTICHESKII ZHURNAL, 1992, 26 (9-10): : 112 - 113
  • [30] A test of 2-keto-l-gulonic acid for antiscorbutic properties
    Ball, EG
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1940, 134 (01) : 177 - 180