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Formate-driven growth coupled with H2 production.

Authors :
Yun Jae Kim
Hyun Sook Lee
Eun Sook Kim
Seung Seob Bae
Jae Kyu Lim
Matsumi, Rie
Lebedinsky, Alexander V.
Sokolova, Tatyana G.
Kozhevnikova, Darya A.
Sun-Shin Cha
Sang-Jin Kim
Kae Kyoung Kwon
Imanaka, Tadayuki
Atomi, Haruyuki
Bonch-Osmolovskaya, Elizaveta A.
Jung-Hyun Lee
Sung Gyun Kang
Source :
Nature. 9/16/2010, Vol. 467 Issue 7313, p352-355. 4p. 1 Black and White Photograph, 2 Diagrams, 1 Chart, 1 Graph.
Publication Year :
2010

Abstract

Although a common reaction in anaerobic environments, the conversion of formate and water to bicarbonate and H2 (with a change in Gibbs free energy of ΔG° = +1.3 kJ mol−1) has not been considered energetic enough to support growth of microorganisms. Recently, experimental evidence for growth on formate was reported for syntrophic communities of Moorella sp. strain AMP and a hydrogen-consuming Methanothermobacter species and of Desulfovibrio sp. strain G11 and Methanobrevibacter arboriphilus strain AZ. The basis of the sustainable growth of the formate-users is explained by H2 consumption by the methanogens, which lowers the H2 partial pressure, thus making the pathway exergonic. However, it has not been shown that a single strain can grow on formate by catalysing its conversion to bicarbonate and H2. Here we report that several hyperthermophilic archaea belonging to the Thermococcus genus are capable of formate-oxidizing, H2-producing growth. The actual ΔG values for the formate metabolism are calculated to range between −8 and −20 kJ mol−1 under the physiological conditions where Thermococcus onnurineus strain NA1 are grown. Furthermore, we detected ATP synthesis in the presence of formate as a sole energy source. Gene expression profiling and disruption identified the gene cluster encoding formate hydrogen lyase, cation/proton antiporter and formate transporter, which were responsible for the growth of T. onnurineus NA1 on formate. This work shows formate-driven growth by a single microorganism with protons as the electron acceptor, and reports the biochemical basis of this ability. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00280836
Volume :
467
Issue :
7313
Database :
Academic Search Index
Journal :
Nature
Publication Type :
Academic Journal
Accession number :
53718079
Full Text :
https://doi.org/10.1038/nature09375