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Biohydrogen production by the thermophilic bacterium Caldicellulosiruptor saccharolyticus: current status and perspectives

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논문

Biohydrogen production by the thermophilic bacterium Caldicellulosiruptor saccharolyticus: current status and perspectives

학술지

Life

저자명

Bielen, Abraham A. M.; Verhaart, Marcel R. A.; van der Oost, John; Kengen, Servé W. M.

초록

<P><I>Caldicellulosiruptor saccharolyticus</I> is one of the most thermophilic cellulolytic organisms known to date. This Gram-positive anaerobic bacterium ferments a broad spectrum of mono-, di- and polysaccharides to mainly acetate, CO<SUB>2</SUB> and hydrogen. With hydrogen yields approaching the theoretical limit for dark fermentation of 4 mol hydrogen per mol hexose, this organism has proven itself to be an excellent candidate for biological hydrogen production. This review provides an overview of the research on <I>C. saccharolyticus</I> with respect to the hydrolytic capability, sugar metabolism, hydrogen formation, mechanisms involved in hydrogen inhibition, and the regulation of the redox and carbon metabolism. Analysis of currently available fermentation data reveal decreased hydrogen yields under non-ideal cultivation conditions, which are mainly associated with the accumulation of hydrogen in the liquid phase. Thermodynamic considerations concerning the reactions involved in hydrogen formation are discussed with respect to the dissolved hydrogen concentration. Novel cultivation data demonstrate the sensitivity of <I>C. saccharolyticus</I> to increased hydrogen levels regarding substrate load and nitrogen limitation. In addition, special attention is given to the rhamnose metabolism, which represents an unusual type of redox balancing. Finally, several approaches are suggested to improve biohydrogen production by <I>C. saccharolyticus</I>.</P>

발행연도

2013

발행기관

MDPI

라이선스

cc-by

ISSN

2075-1729

3

1

페이지

pp.52-85

주제어

Caldicellulosiruptor saccharolyticus; biohydrogen; dark fermentation; cellulolytic thermophile; thermodynamics; rhamnose metabolism; pyrophosphate; redox balance; hydrogen inhibition; regulation

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1 2023-12-11

논문; 2013-01-17

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