In situ analysis of oxygen consumption and diffusive transport in 1 high-temperature acidic iron-oxide microbial mats
dc.contributor.author | Bernstein, Hans C. | |
dc.contributor.author | Beam, Jacob P. | |
dc.contributor.author | Kozubal, Mark A. | |
dc.contributor.author | Carlson, Ross P. | |
dc.contributor.author | Inskeep, William P. | |
dc.date.accessioned | 2017-01-27T21:19:32Z | |
dc.date.available | 2017-01-27T21:19:32Z | |
dc.date.issued | 2013-03 | |
dc.description.abstract | The role of dissolved oxygen as a principal electron acceptor for microbial metabolism was investigated within Fe(III)-oxide microbial mats that form in acidic geothermal springs of Yellowstone National Park (USA). Specific goals of the study were to measure and model dissolved oxygen profiles within high temperature (65–75°C) acidic (pH = 2.7–3.8) Fe(III)-oxide microbial mats, and correlate the abundance of aerobic, iron-oxidizing Metallosphaera yellowstonensis organisms and mRNA gene expression levels to Fe(II)-oxidizing habitats shown to consume oxygen. In situ oxygen microprofiles were obtained perpendicular to the direction of convective flow across the aqueous phase/Fe(III)-oxide microbial mat interface using oxygen microsensors. Dissolved oxygen concentrations dropped from ~ 50–60 µM in the bulkfluid/ mat surface to below detection (< 0.3 µM) at a depth of ~ 700 µm (~ 10% of the total mat depth). Net areal oxygen fluxes into the microbial mats were estimated to range from 1.4–1.6 ¥ 10-4 µmol cm-2 s-1. Dimensionless parameters were used to model dissolved oxygen profiles and establish that mass transfer rates limit the oxygen consumption. A zone of higher dissolved oxygen at the mat surface promotes Fe(III)-oxide biomineralization, which was supported using molecular analysis of Metallosphaera yellowstonensis 16S rRNA gene copy numbers and mRNA expression of haem Cu oxidases (FoxA) associated with Fe(II)-oxidation. | en_US |
dc.identifier.citation | Bernstein HC, Beam JP, Kozubal MA, Carlson RP, Inskeep WP, "In situ analysis of oxygen consumption and diffusive transport in 1 high-temperature acidic iron-oxide microbial mats," Environ Microbiol 2013 15(8):2360-2370 | en_US |
dc.identifier.issn | 1462-2912 | |
dc.identifier.uri | https://scholarworks.montana.edu/handle/1/12451 | |
dc.title | In situ analysis of oxygen consumption and diffusive transport in 1 high-temperature acidic iron-oxide microbial mats | en_US |
dc.type | Article | en_US |
mus.citation.extentfirstpage | 2360 | en_US |
mus.citation.extentlastpage | 2370 | en_US |
mus.citation.issue | 8 | en_US |
mus.citation.journaltitle | Environmental Microbiology | en_US |
mus.citation.volume | 15 | en_US |
mus.contributor.orcid | Bernstein, Hans C.|0000-0003-2913-7708 | en_US |
mus.data.thumbpage | 6 | en_US |
mus.identifier.category | Engineering & Computer Science | en_US |
mus.identifier.category | Life Sciences & Earth Sciences | en_US |
mus.identifier.doi | 10.1111/1462-2920.12109 | en_US |
mus.relation.college | College of Agriculture | en_US |
mus.relation.college | College of Engineering | en_US |
mus.relation.college | College of Letters & Science | en_US |
mus.relation.department | Center for Biofilm Engineering. | en_US |
mus.relation.department | Chemical & Biological Engineering. | en_US |
mus.relation.department | Ecology. | en_US |
mus.relation.department | Environmental Engineering. | en_US |
mus.relation.department | Microbiology & Immunology. | en_US |
mus.relation.researchgroup | Center for Biofilm Engineering. | en_US |
mus.relation.university | Montana State University - Bozeman | en_US |
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