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PMID: 17221162 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Continuous enrichment culturing of thermophiles under sulfate and nitrate-reducing conditions and at deep-sea hydrostatic pressures.

Extremophiles : life under extreme conditions ·Vol. 11 ·No. 2 ·2007-03-00 ·Pages 371-82

Houghton JL, Seyfried WE, Banta AB, Reysenbach AL

Abstract

A continuous culture bioreactor was developed to enrich for nitrate and sulfate reducing thermophiles under in situ deep-sea pressures. The ultimate objective of this experimental design was to be able to study microbial activities at chemical and physical conditions relevant to seafloor hydrothermal vents. Sulfide, sulfate and oxide minerals from sampled seafloor vent-chimney structures [East Pacific Rise (9 degrees 46'N)] served as source mineral and microbial inoculum for enrichment culturing using nitrate and sulfate-enriched media at 70 and 90 degrees C and 250 bars. Changes in microbial diversity during the continuous reaction flow were monitored using denaturing gradient gel electrophoresis (DGGE) of PCR amplified 16S rRNA gene fragments. Time series changes in fluid chemistry were also monitored throughout the experiment to assess the feedback between mineral-fluid reaction and metabolic processes. Data indicate a shift from the dominance of epsilon Proteobacteria in the initial inoculum to the several Aquificales-like phylotypes in nitrate-reducing enrichment media and Thermodesulfobacteriales in the sulfate-reducing enrichment media. Methanogens were detected in the original sulfide sample and grew in selected sulfate-enriched experiments. Microbial interactions with anhydrite and pyrrhotite in the chimney material resulted in measurable changes in fluid chemistry despite a fluid residence time only 75 min in the reactor. Changes in temperature rather than source material resulted in greater differences in microbial enrichments and mediated geochemical reactions.

MeSH Terms
Biodiversity Epsilonproteobacteria/growth & development,metabolism Hot Temperature Nitrates/metabolism Oxidation-Reduction Pressure Seawater/microbiology Sulfates/metabolism
Chemicals
Nitrates Sulfates
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Houghton J L
Department of Geology and Geophysics, University of Minnesota, Minneapolis, MN 55455, USA.
Seyfried W E
Banta A B
Reysenbach A-L
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Article Info
Journal
Extremophiles : life under extreme conditions
Abbr.
Extremophiles
ISSN
1431-0651
Published
2007-03-00
Epub
2007-00-13
Pages
371-82
Language
English
Region
Germany
NLM ID
9706854
Subset
IM
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