Microorganisms can use crystalline iron minerals for iron reduction linked to organic matter degradation or as conduits for direct interspecies electron transfer (mDIET) to syntrophic partners, e.g., methanogens. The environmental conditions that lead either to reduction or conduit use are so far unknown. We investigated microbial community shifts and interactions with crystalline iron minerals (hematite and magnetite) in methanic ferruginous marine sediment incubations during organic matter (glucose) degradation at varying temperatures. Iron reduction rates increased with decreasing temperature from 30°C to 4°C. Both hematite and magnetite facilitated iron reduction at 4°C, demonstrating that microorganisms in the methanic zone of marine s...
Although earlier circumstantial observations have suggested the presence of iron oxidizing bacteria ...
Members of the genus Shewanella capable of reducing metals and forming minerals under cold-temperatu...
Iron oxidizers are widespread in marine environments and play an important role in marine iron cycli...
Microorganisms can use crystalline iron minerals for iron reduction linked to organic matter degrada...
Some thermophilic bacteria from deep-sea hydrothermal vents grow by dissimilatory iron reduction, bu...
<p>Fe(III) (oxyhydr)oxides are electron acceptors for some hyperthermophilic archaea in mildly reduc...
Microbial iron (Fe) reduction by naturally abundant iron minerals has been observed in many anoxic a...
Iron (Fe) is an essential element for marine microbial growth but is present in trace amounts (<0.1 ...
Iron reducing organisms are ubiquitous and phylogenetically diverse. Their acitivity in the environm...
Elevated dissolved iron concentrations (Fe2 ), as signpost for on-going iron oxide reduction in the ...
Iron (Fe) redox-based metabolisms likely supported life on early Earth and may support life on other...
Anaerobic biodegradation of aromatic compounds under sulfate-reducing conditions is important to mar...
Iron (Fe) redox-based metabolisms likely supported life on early Earth and may support life on other...
Iron (Fe) redox-based metabolisms likely supported life on early Earth and may support life on other...
Iron (Fe) redox-based metabolisms likely supported life on early Earth and may support life on other...
Although earlier circumstantial observations have suggested the presence of iron oxidizing bacteria ...
Members of the genus Shewanella capable of reducing metals and forming minerals under cold-temperatu...
Iron oxidizers are widespread in marine environments and play an important role in marine iron cycli...
Microorganisms can use crystalline iron minerals for iron reduction linked to organic matter degrada...
Some thermophilic bacteria from deep-sea hydrothermal vents grow by dissimilatory iron reduction, bu...
<p>Fe(III) (oxyhydr)oxides are electron acceptors for some hyperthermophilic archaea in mildly reduc...
Microbial iron (Fe) reduction by naturally abundant iron minerals has been observed in many anoxic a...
Iron (Fe) is an essential element for marine microbial growth but is present in trace amounts (<0.1 ...
Iron reducing organisms are ubiquitous and phylogenetically diverse. Their acitivity in the environm...
Elevated dissolved iron concentrations (Fe2 ), as signpost for on-going iron oxide reduction in the ...
Iron (Fe) redox-based metabolisms likely supported life on early Earth and may support life on other...
Anaerobic biodegradation of aromatic compounds under sulfate-reducing conditions is important to mar...
Iron (Fe) redox-based metabolisms likely supported life on early Earth and may support life on other...
Iron (Fe) redox-based metabolisms likely supported life on early Earth and may support life on other...
Iron (Fe) redox-based metabolisms likely supported life on early Earth and may support life on other...
Although earlier circumstantial observations have suggested the presence of iron oxidizing bacteria ...
Members of the genus Shewanella capable of reducing metals and forming minerals under cold-temperatu...
Iron oxidizers are widespread in marine environments and play an important role in marine iron cycli...