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A Comprehensive Investigation on Iron Cycling in a Freshwater Seep Including Microscopy, Cultivation and Molecular Community Analysis
Iron reduction and oxidation, as well as the microbial community involved in these processes, were investigated in a small pond that is continuously fed by slightly acidic, hypoxic, iron rich ground water. The seep area is located in a beech forest in central Jutland (Denmark), and beech litter is t...
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Published in: | Geomicrobiology journal 2010-01, Vol.27 (1), p.15-34 |
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description | Iron reduction and oxidation, as well as the microbial community involved in these processes, were investigated in a small pond that is continuously fed by slightly acidic, hypoxic, iron rich ground water. The seep area is located in a beech forest in central Jutland (Denmark), and beech litter is the dominant source of organic matter, carbon and energy for the microbial community. The pond is 30 to 50 cm deep with a water column depth ranging from 15 to 20 cm. Oxygen could only be detected down to 7 cm depth of the water column. Fe(II) concentrations increased with depth from about 30 μM close to the surface to ca. 100 μM at the bottom. The presence of Gallionella- and Sideroxidans-related strains was supported by clone library data, while Leptothrix-related 16S rDNA clones were not found. Samples amended with leaves, acetate, lactate and ethanol all showed stimulated iron reduction at the in situ temperature (about 10°C). In particular, dried beech leaves stimulated iron reduction without a lag phase while acetate was only degraded after a 22 day lag period at the in situ pH. The long lag phase is most probably due to the low pH that is responsible for high acetic acid concentrations (0.8-1.2 mM) at the start of the incubation. Light microscopy observations confirm the clone library data that Gallionella spp and other iron oxidizer related 16S rDNA sequences were relatively common. In addition, 16S rDNA sequences relatively similar to sequences of members of the iron reducer family Geobacteraceae were found. A clone library constructed with a primer set targeting specifically Geobacter-related strains revealed that strains most closely related to Geobacter thiogenes were predominant (19 out of 20 clones). By a combination of microscopy, cultivation and molecular investigations we have been able to provide several lines of evidence for a tight coupling of biological iron reduction and oxidation in this iron-rich fresh water seep. |
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The long lag phase is most probably due to the low pH that is responsible for high acetic acid concentrations (0.8-1.2 mM) at the start of the incubation. Light microscopy observations confirm the clone library data that Gallionella spp and other iron oxidizer related 16S rDNA sequences were relatively common. In addition, 16S rDNA sequences relatively similar to sequences of members of the iron reducer family Geobacteraceae were found. A clone library constructed with a primer set targeting specifically Geobacter-related strains revealed that strains most closely related to Geobacter thiogenes were predominant (19 out of 20 clones). 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The seep area is located in a beech forest in central Jutland (Denmark), and beech litter is the dominant source of organic matter, carbon and energy for the microbial community. The pond is 30 to 50 cm deep with a water column depth ranging from 15 to 20 cm. Oxygen could only be detected down to 7 cm depth of the water column. Fe(II) concentrations increased with depth from about 30 μM close to the surface to ca. 100 μM at the bottom. The presence of Gallionella- and Sideroxidans-related strains was supported by clone library data, while Leptothrix-related 16S rDNA clones were not found. Samples amended with leaves, acetate, lactate and ethanol all showed stimulated iron reduction at the in situ temperature (about 10°C). In particular, dried beech leaves stimulated iron reduction without a lag phase while acetate was only degraded after a 22 day lag period at the in situ pH. The long lag phase is most probably due to the low pH that is responsible for high acetic acid concentrations (0.8-1.2 mM) at the start of the incubation. Light microscopy observations confirm the clone library data that Gallionella spp and other iron oxidizer related 16S rDNA sequences were relatively common. In addition, 16S rDNA sequences relatively similar to sequences of members of the iron reducer family Geobacteraceae were found. A clone library constructed with a primer set targeting specifically Geobacter-related strains revealed that strains most closely related to Geobacter thiogenes were predominant (19 out of 20 clones). By a combination of microscopy, cultivation and molecular investigations we have been able to provide several lines of evidence for a tight coupling of biological iron reduction and oxidation in this iron-rich fresh water seep.</description><subject>biomineralization</subject><subject>Gallionella</subject><subject>Geobacter</subject><subject>Geobacteraceae</subject><subject>groundwater</subject><subject>molecular ecology</subject><issn>0149-0451</issn><issn>1521-0529</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2010</creationdate><recordtype>article</recordtype><recordid>eNqNkcFq3DAQhk1pods0D9Cbbr3U7ciWvBb0spimWUjIoc3ZzNqjREWWXEnexA-Q947N9hZKC8MMzPzfPwyTZR84fOZQwxfgQoGQoKAsyoJX8lW24bLgOchCvc426zxfBPxt9i7GXwAghCw22dOONX4YA92Ti-ZIbO-OFJO5w2S8Y0vsw5KaubPG3THjGLKLQPH-ARMF9oNoXJDOTv06vjZd8LHz4_yJNZNN5niyQdeza2-pmyyGdeEwOZNmtnNo52ji--yNRhvp_E89y24vvv1sLvOrm-_7ZneVo1Aq5QQIUGklua7Lba9A9VQsLYVUHyolCCRgpRAPhFrqugcNVNWFrg6drEssz7KPJ98x-N_Tcmc7mNiRtejIT7HdSiFlJYT4T2WxlYuSn5Tr6TGQbsdgBgxzy6Fdf9O--M3CbE-McdqHAR98sH2bcLY-6ICuM_El1abHtJBf_0mWf1_8DORKqME</recordid><startdate>20100101</startdate><enddate>20100101</enddate><creator>Bruun, Anne-Mette</creator><creator>Finster, Kai</creator><creator>Gunnlaugsson, Haraldur P.</creator><creator>Nørnberg, Per</creator><creator>Friedrich, Michael W.</creator><general>Taylor & Francis Group</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7T7</scope><scope>7UA</scope><scope>8FD</scope><scope>C1K</scope><scope>F1W</scope><scope>FR3</scope><scope>H95</scope><scope>H96</scope><scope>H97</scope><scope>L.G</scope><scope>P64</scope></search><sort><creationdate>20100101</creationdate><title>A Comprehensive Investigation on Iron Cycling in a Freshwater Seep Including Microscopy, Cultivation and Molecular Community Analysis</title><author>Bruun, Anne-Mette ; Finster, Kai ; Gunnlaugsson, Haraldur P. ; Nørnberg, Per ; Friedrich, Michael W.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-a499t-e0a006f951f837d909de2a009ae8b694e050a69aabeaf5f8d0f0e682f6bc583a3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2010</creationdate><topic>biomineralization</topic><topic>Gallionella</topic><topic>Geobacter</topic><topic>Geobacteraceae</topic><topic>groundwater</topic><topic>molecular ecology</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Bruun, Anne-Mette</creatorcontrib><creatorcontrib>Finster, Kai</creatorcontrib><creatorcontrib>Gunnlaugsson, Haraldur P.</creatorcontrib><creatorcontrib>Nørnberg, Per</creatorcontrib><creatorcontrib>Friedrich, Michael W.</creatorcontrib><collection>CrossRef</collection><collection>Industrial and Applied Microbiology Abstracts (Microbiology A)</collection><collection>Water Resources Abstracts</collection><collection>Technology Research Database</collection><collection>Environmental Sciences and Pollution Management</collection><collection>ASFA: Aquatic Sciences and Fisheries Abstracts</collection><collection>Engineering Research Database</collection><collection>Aquatic Science & Fisheries Abstracts (ASFA) 1: Biological Sciences & Living Resources</collection><collection>Aquatic Science & Fisheries Abstracts (ASFA) 2: Ocean Technology, Policy & Non-Living Resources</collection><collection>Aquatic Science & Fisheries Abstracts (ASFA) 3: Aquatic Pollution & Environmental Quality</collection><collection>Aquatic Science & Fisheries Abstracts (ASFA) Professional</collection><collection>Biotechnology and BioEngineering Abstracts</collection><jtitle>Geomicrobiology journal</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Bruun, Anne-Mette</au><au>Finster, Kai</au><au>Gunnlaugsson, Haraldur P.</au><au>Nørnberg, Per</au><au>Friedrich, Michael W.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>A Comprehensive Investigation on Iron Cycling in a Freshwater Seep Including Microscopy, Cultivation and Molecular Community Analysis</atitle><jtitle>Geomicrobiology journal</jtitle><date>2010-01-01</date><risdate>2010</risdate><volume>27</volume><issue>1</issue><spage>15</spage><epage>34</epage><pages>15-34</pages><issn>0149-0451</issn><eissn>1521-0529</eissn><abstract>Iron reduction and oxidation, as well as the microbial community involved in these processes, were investigated in a small pond that is continuously fed by slightly acidic, hypoxic, iron rich ground water. The seep area is located in a beech forest in central Jutland (Denmark), and beech litter is the dominant source of organic matter, carbon and energy for the microbial community. The pond is 30 to 50 cm deep with a water column depth ranging from 15 to 20 cm. Oxygen could only be detected down to 7 cm depth of the water column. Fe(II) concentrations increased with depth from about 30 μM close to the surface to ca. 100 μM at the bottom. The presence of Gallionella- and Sideroxidans-related strains was supported by clone library data, while Leptothrix-related 16S rDNA clones were not found. Samples amended with leaves, acetate, lactate and ethanol all showed stimulated iron reduction at the in situ temperature (about 10°C). In particular, dried beech leaves stimulated iron reduction without a lag phase while acetate was only degraded after a 22 day lag period at the in situ pH. The long lag phase is most probably due to the low pH that is responsible for high acetic acid concentrations (0.8-1.2 mM) at the start of the incubation. Light microscopy observations confirm the clone library data that Gallionella spp and other iron oxidizer related 16S rDNA sequences were relatively common. In addition, 16S rDNA sequences relatively similar to sequences of members of the iron reducer family Geobacteraceae were found. A clone library constructed with a primer set targeting specifically Geobacter-related strains revealed that strains most closely related to Geobacter thiogenes were predominant (19 out of 20 clones). By a combination of microscopy, cultivation and molecular investigations we have been able to provide several lines of evidence for a tight coupling of biological iron reduction and oxidation in this iron-rich fresh water seep.</abstract><pub>Taylor & Francis Group</pub><doi>10.1080/01490450903232165</doi><tpages>20</tpages></addata></record> |
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subjects | biomineralization Gallionella Geobacter Geobacteraceae groundwater molecular ecology |
title | A Comprehensive Investigation on Iron Cycling in a Freshwater Seep Including Microscopy, Cultivation and Molecular Community Analysis |
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