Physiological characteristics of the extreme thermophile <it>Caldicellulosiruptor saccharolyticus</it>: an efficient hydrogen cell factory

<p>Abstract</p> <p>Global concerns about climate changes and their association with the use of fossil fuels have accelerated research on biological fuel production. Biological hydrogen production from hemicellulose-containing waste is considered one of the promising avenues. A majo...

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Main Authors: Zeidan Ahmad A, Willquist Karin, van Niel Ed WJ
Format: Article
Language:English
Published: BMC 2010-11-01
Series:Microbial Cell Factories
Online Access:http://www.microbialcellfactories.com/content/9/1/89
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spelling doaj-84f556d6f2d643439de79b0dfe8de8072020-11-25T02:43:58ZengBMCMicrobial Cell Factories1475-28592010-11-01918910.1186/1475-2859-9-89Physiological characteristics of the extreme thermophile <it>Caldicellulosiruptor saccharolyticus</it>: an efficient hydrogen cell factoryZeidan Ahmad AWillquist Karinvan Niel Ed WJ<p>Abstract</p> <p>Global concerns about climate changes and their association with the use of fossil fuels have accelerated research on biological fuel production. Biological hydrogen production from hemicellulose-containing waste is considered one of the promising avenues. A major economical issue for such a process, however, is the low substrate conversion efficiency. Interestingly, the extreme thermophilic bacterium <it>Caldicellulosiruptor saccharolyticus </it>can produce hydrogen from carbohydrate-rich substrates at yields close to the theoretical maximum of the dark fermentation process (i.e., 4 mol H<sub>2</sub>/mol hexose). The organism is able to ferment an array of mono-, di- and polysaccharides, and is relatively tolerant to high partial hydrogen pressures, making it a promising candidate for exploitation in a biohydrogen process. The behaviour of this Gram-positive bacterium bears all hallmarks of being adapted to an environment sparse in free sugars, which is further reflected in its low volumetric hydrogen productivity and low osmotolerance. These two properties need to be improved by at least a factor of 10 and 5, respectively, for a cost-effective industrial process. In this review, the physiological characteristics of <it>C. saccharolyticus </it>are analyzed in view of the requirements for an efficient hydrogen cell factory. A special emphasis is put on the tight regulation of hydrogen production in <it>C. saccharolyticus </it>by both redox and energy metabolism. Suggestions for strategies to overcome the current challenges facing the potential use of the organism in hydrogen production are also discussed.</p> http://www.microbialcellfactories.com/content/9/1/89
collection DOAJ
language English
format Article
sources DOAJ
author Zeidan Ahmad A
Willquist Karin
van Niel Ed WJ
spellingShingle Zeidan Ahmad A
Willquist Karin
van Niel Ed WJ
Physiological characteristics of the extreme thermophile <it>Caldicellulosiruptor saccharolyticus</it>: an efficient hydrogen cell factory
Microbial Cell Factories
author_facet Zeidan Ahmad A
Willquist Karin
van Niel Ed WJ
author_sort Zeidan Ahmad A
title Physiological characteristics of the extreme thermophile <it>Caldicellulosiruptor saccharolyticus</it>: an efficient hydrogen cell factory
title_short Physiological characteristics of the extreme thermophile <it>Caldicellulosiruptor saccharolyticus</it>: an efficient hydrogen cell factory
title_full Physiological characteristics of the extreme thermophile <it>Caldicellulosiruptor saccharolyticus</it>: an efficient hydrogen cell factory
title_fullStr Physiological characteristics of the extreme thermophile <it>Caldicellulosiruptor saccharolyticus</it>: an efficient hydrogen cell factory
title_full_unstemmed Physiological characteristics of the extreme thermophile <it>Caldicellulosiruptor saccharolyticus</it>: an efficient hydrogen cell factory
title_sort physiological characteristics of the extreme thermophile <it>caldicellulosiruptor saccharolyticus</it>: an efficient hydrogen cell factory
publisher BMC
series Microbial Cell Factories
issn 1475-2859
publishDate 2010-11-01
description <p>Abstract</p> <p>Global concerns about climate changes and their association with the use of fossil fuels have accelerated research on biological fuel production. Biological hydrogen production from hemicellulose-containing waste is considered one of the promising avenues. A major economical issue for such a process, however, is the low substrate conversion efficiency. Interestingly, the extreme thermophilic bacterium <it>Caldicellulosiruptor saccharolyticus </it>can produce hydrogen from carbohydrate-rich substrates at yields close to the theoretical maximum of the dark fermentation process (i.e., 4 mol H<sub>2</sub>/mol hexose). The organism is able to ferment an array of mono-, di- and polysaccharides, and is relatively tolerant to high partial hydrogen pressures, making it a promising candidate for exploitation in a biohydrogen process. The behaviour of this Gram-positive bacterium bears all hallmarks of being adapted to an environment sparse in free sugars, which is further reflected in its low volumetric hydrogen productivity and low osmotolerance. These two properties need to be improved by at least a factor of 10 and 5, respectively, for a cost-effective industrial process. In this review, the physiological characteristics of <it>C. saccharolyticus </it>are analyzed in view of the requirements for an efficient hydrogen cell factory. A special emphasis is put on the tight regulation of hydrogen production in <it>C. saccharolyticus </it>by both redox and energy metabolism. Suggestions for strategies to overcome the current challenges facing the potential use of the organism in hydrogen production are also discussed.</p>
url http://www.microbialcellfactories.com/content/9/1/89
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