Reassessment of hydrogen tolerance in Caldicellulosiruptor saccharolyticus

被引:22
|
作者
Willquist, Karin [1 ]
Pawar, Sudhanshu S. [1 ]
Van Niel, Ed W. J. [1 ]
机构
[1] Lund Univ, Dept Appl Microbiol, SE-22100 Lund, Sweden
来源
MICROBIAL CELL FACTORIES | 2011年 / 10卷
关键词
Caldicellulosiruptor saccharolyticus; biohydrogen production; hydrogen tolerance; enzyme levels; glyceraldehyde-3-phosphate dehydrogenase kinetics; redox ratio; CLOSTRIDIUM-CELLULOLYTICUM; EXTREME THERMOPHILE; METABOLISM; CULTURE; FERMENTATION; CELLOBIOSE; SUBSTRATE; BACTERIA; SYSTEM; YIELD;
D O I
10.1186/1475-2859-10-111
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: Caldicellulosiruptor saccharolyticus has the ability to produce hydrogen (H-2) at high yields from a wide spectrum of carbon sources, and has therefore gained industrial interest. For a cost-effective biohydrogen process, the ability of an organism to tolerate high partial pressures of H-2 (P-H2) is a critical aspect to eliminate the need for continuous stripping of the produced H-2 from the bioreactor. Results: Herein, we demonstrate that, under given conditions, growth and H-2 production in C. saccharolyticus can be sustained at P-H2 up to 67 kPa in a chemostat. At this P-H2, 38% and 16% of the pyruvate flux was redirected to lactate and ethanol, respectively, to maintain a relatively low cytosolic NADH/NAD ratio (0.12 mol/mol). To investigate the effect of the redox ratio on the glycolytic flux, a kinetic model describing the activity of the key glycolytic enzyme, glyceraldehyde-3-phosphate dehydrogenase (GAPDH), was developed. Indeed, at NADH/NAD ratios of 0.12 mol/mol (Ki of NADH = 0.03 +/- 0.01 mM) GAPDH activity was inhibited by only 50% allowing still a high glycolytic flux (3.2 +/- 0.4 mM/h). Even at high NADH/NAD ratios up to 1 mol/mol the enzyme was not completely inhibited. During batch cultivations, hydrogen tolerance of C. saccharolyticus was dependent on the growth phase of the organism as well as the carbon and energy source used. The obtained results were analyzed, based on thermodynamic and enzyme kinetic considerations, to gain insight in the mechanism underlying the unique ability of C. saccharolyticus to grow and produce H-2 under relatively high P-H2. Conclusion: C. saccharolyticus is able to grow and produce hydrogen at high P-H2, hence eliminating the need of gas sparging in its cultures. Under this condition, it has a unique ability to fine tune its metabolism by maintaining the glycolytic flux through regulating GAPDH activity and redistribution of pyruvate flux. Concerning the later, xylose-rich feedstock should be preferred over the sucrose-rich one for better H-2 yield.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Hydrogen production from carrot pulp by the extreme thermophiles Caldicellulosiruptor saccharolyticus and Thermotoga neapolitana
    de Vrije, Truus
    Budde, Miriam A. W.
    Lips, Steef J.
    Bakker, Robert R.
    Mars, Astrid E.
    Claassen, Pieternel A. M.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (24) : 13206 - 13213
  • [22] Yields from glucose, xylose, and paper sludge hydrolysate during hydrogen production by the extreme thermophile Caldicellulosiruptor saccharolyticus
    Kádár, Z
    De Vrijek, T
    van Noorden, GE
    Budde, MAW
    Szengyel, Z
    Réczey, K
    Claassen, PAM
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2004, 113 : 497 - 508
  • [23] Consolidated bioprocessing of untreated switchgrass to hydrogen by the extreme thermophile Caldicellulosiruptor saccharolyticus DSM 8903
    Talluri, Suvarna
    Raj, Subramanian Mohan
    Christopher, Lew Paul
    BIORESOURCE TECHNOLOGY, 2013, 139 : 272 - 279
  • [24] Distinctive properties of high hydrogen producing extreme thermophiles, Caldicellulosiruptor saccharolyticus and Thermotoga elfii
    van Niel, EWJ
    Budde, MAW
    de Haas, GG
    van der Wal, FJ
    Claasen, PAM
    Stams, AJM
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2002, 27 (11-12) : 1391 - 1398
  • [25] Probing the redox metabolism in the strictly anaerobic, extremely thermophilic, hydrogen-producing Caldicellulosiruptor saccharolyticus using amperometry
    Kostesha, Natalie
    Willquist, Karin
    Emneus, Jenny
    van Niel, Ed W. J.
    EXTREMOPHILES, 2011, 15 (01) : 77 - 87
  • [26] A non-linear model of hydrogen production by Caldicellulosiruptor saccharolyticus for diauxic-like consumption of lignocellulosic sugar mixtures
    Bjorkmalm, Johanna
    Byrne, Eoin
    van Niel, Ed W. J.
    Willquist, Karin
    BIOTECHNOLOGY FOR BIOFUELS, 2018, 11
  • [27] Effect of medium composition on biohydrogen production by the extreme thermophilic bacterium Caldicellulosiruptor saccharolyticus
    Martinez-Porqueras, Ester
    Wechselberger, Patrick
    Herwig, Christoph
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (27) : 11756 - 11764
  • [28] Dark fermentation of palm oil mill effluent by Caldicellulosiruptor saccharolyticus immobilized on activated carbon for thermophilic biohydrogen production
    Jamali, Nur Syakina
    Jahim, Jamaliah Md
    Mumtaz, Tabassum
    Abdul, Peer Mohamed
    ENVIRONMENTAL TECHNOLOGY & INNOVATION, 2021, 22
  • [29] Characterization of a recombinant β-glucosidase from the thermophilic bacterium Caldicellulosiruptor saccharolyticus
    Hong, Mi-Ri
    Kim, Yeong-Su
    Park, Chang-Su
    Lee, Jung-Kul
    Kim, Yeong-Suk
    Oh, Deok-Kun
    JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2009, 108 (01) : 36 - 40
  • [30] Structural studies of β-glucosidase from the thermophilic bacterium Caldicellulosiruptor saccharolyticus
    Sotiropoulou, Anastasia I.
    Hatzinikolaou, Dimitris G.
    Chrysina, Evangelia D.
    ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY, 2024, 80 : 733 - 743