Literature DB >> 21387195

Anaerobic transformation of carbon monoxide by microbial communities of Kamchatka hot springs.

Tatiana V Kochetkova1, Igor I Rusanov, Nikolay V Pimenov, Tatyana V Kolganova, Alexander V Lebedinsky, Elizaveta A Bonch-Osmolovskaya, Tatyana G Sokolova.   

Abstract

Carbon monoxide (CO) is one of the common gaseous compounds found in hot volcanic environments. It is known to serve as the growth substrate for a number of thermophilic prokaryotes, both aerobic and anaerobic. The goal of this work was to study the process of anaerobic transformation of CO by microbial communities inhabiting natural thermal environments: hot springs of Uzon Caldera, Kamchatka. The anaerobic microbial community of Treshchinny Spring (80°C, pH 6.5) was found to exhibit two peaks of affinity for CO (K (S1) = 54 nM and K (S2) = 1 μM). The actual rate of anaerobic CO transformation by the microbial community of this spring, calculated after obtaining the concentration dependence curve and extrapolated to the natural concentration of CO dissolved in the hot spring water (20 nM), was found to be 120 μmol l(-1) of sediment day(-1). In all the hot springs studied, more than 90% of the carbon of (14)CO upon anaerobic incubation was recovered as (14)CO(2). From 1 to 5% of (14)CO was transformed to volatile fatty acids (VFA). The number of microorganisms capable of anaerobic CO oxidation determined by dilution-to-extinction method reached 10(6) cells ml(-1) of sediment. CO-transforming anaerobic thermophilic microorganisms isolated from the springs under study exhibited hydrogenogenic type of CO oxidation and belonged to the bacterial genera Carboxydocella and Dictyoglomus. These data suggest a significant role of hydrogenogenic carboxydotrophic prokaryotes in anaerobic CO transformation in Uzon Caldera hot springs.

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Year:  2011        PMID: 21387195     DOI: 10.1007/s00792-011-0362-7

Source DB:  PubMed          Journal:  Extremophiles        ISSN: 1431-0651            Impact factor:   2.395


  14 in total

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  12 in total

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Authors:  R Craig Everroad; Hiroyo Otaki; Katsumi Matsuura; Shin Haruta
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7.  The Complete Genome Sequence of Hyperthermophile Dictyoglomus turgidum DSM 6724™ Reveals a Specialized Carbohydrate Fermentor.

Authors:  Phillip J Brumm; Krishne Gowda; Frank T Robb; David A Mead
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8.  Draft Genome Sequences of Two Hydrogenogenic Carboxydotrophic Bacteria, Carboxydocella sp. Strains JDF658 and ULO1, Isolated from Two Distinct Volcanic Fronts in Japan.

Authors:  Yuto Fukuyama; Tatsuki Oguro; Kimiho Omae; Yasuko Yoneda; Takashi Yoshida; Yoshihiko Sako
Journal:  Genome Announc       Date:  2017-04-20

9.  Genomic Insights Into Energy Metabolism of Carboxydocella thermautotrophica Coupling Hydrogenogenic CO Oxidation With the Reduction of Fe(III) Minerals.

Authors:  Stepan V Toshchakov; Alexander V Lebedinsky; Tatyana G Sokolova; Daria G Zavarzina; Alexei A Korzhenkov; Alina V Teplyuk; Natalia I Chistyakova; Vyacheslav S Rusakov; Elizaveta A Bonch-Osmolovskaya; Ilya V Kublanov; Sergey N Gavrilov
Journal:  Front Microbiol       Date:  2018-08-03       Impact factor: 5.640

10.  Young «oil site» of the Uzon Caldera as a habitat for unique microbial life.

Authors:  Sergey E Peltek; Alla V Bryanskaya; Yuliya E Uvarova; Aleksey S Rozanov; Timofey V Ivanisenko; Vladimir A Ivanisenko; Elena V Lazareva; Olga V Saik; Vadim M Efimov; Sergey M Zhmodik; Oxana P Taran; Nikolay M Slynko; Sergey V Shekhovtsov; Valentin N Parmon; Nikolay L Dobretsov; Nikolay A Kolchanov
Journal:  BMC Microbiol       Date:  2020-11-24       Impact factor: 3.605

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