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Production of Hydrogen from α-1,4- and β-1,4-Linked Saccharides by Marine Hyperthermophilic Archaea
Author(s) -
Daniel M. Oslowski,
JongHyun Jung,
Dong-Ho Seo,
Cheon-Seok Park,
James F. Holden
Publication year - 2011
Publication title -
applied and environmental microbiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.552
H-Index - 324
eISSN - 1070-6291
pISSN - 0099-2240
DOI - 10.1128/aem.01366-10
Subject(s) - pyrococcus furiosus , maltose , cellobiose , biochemistry , starch , hyperthermophile , archaea , biology , cellulose , amylase , glycoside hydrolase , heterotroph , chemistry , bacteria , hydrolysis , enzyme , cellulase , gene , genetics
Nineteen hyperthermophilic heterotrophs from deep-sea hydrothermal vents, plus the control organismPyrococcus furiosus , were examined for their ability to grow and produce H2 on maltose, cellobiose, and peptides and for the presence of the genes encoding proteins that hydrolyze starch and cellulose. All of the strains grew on these disaccharides and peptides and converted maltose and peptides to H2 even when elemental sulfur was present as a terminal electron acceptor. Half of the strains had at least one gene for an extracellular starch hydrolase, but onlyP. furiosus had a gene for an extracellular β-1,4-endoglucanase.P. furiosus was serially adapted for growth on CF11 cellulose and H2 production, which is the first reported instance of hyperthermophilic growth on cellulose, with a doubling time of 64 min. Cell-specific H2 production rates were 29 fmol, 37 fmol, and 54 fmol of H2 produced cell−1 doubling−1 on α-1,4-linked sugars, β-1,4-linked sugars, and peptides, respectively. The highest total community H2 production rate came from growth on starch (2.6 mM H2 produced h−1 ). Hyperthermophilic heterotrophs may serve as an important alternate source of H2 for hydrogenotrophic microorganisms in low-H2 hydrothermal environments, and some are candidates for H2 bioenergy production in bioreactors.

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