Cable bacteria can strongly alter sediment biogeochemistry. Here, we used laboratory incubations to determine the potential impact of their activity on the cycling of iron (Fe), phosphorus (P) and sulfur (S). Microsensor depth profiles of oxygen, sulfide and pH in combination with electric potential profiling and fluorescence in situ hybridisation (FISH) analyses showed a rapid development (5 d) of cable bacteria, followed by a long period of activity (200 d). During most of the experiment, the current density correlated linearly with the oxygen demand. Sediment oxygen uptake was attributed to the activity of cable bacteria and the oxidation of reduced products from the anaerobic degradation of organic matter, such as ammonium. Pore water s...
Phosphorus is an essential nutrient for life. The release of phosphorus from sediments is critical i...
Abstract: Previous studies have demonstrated that e-SOx can regulate the sedimentary release of phos...
Recently, a novel electrogenic type of sulphur oxidation was documented in marine sediments, whereby...
Cable bacteria can strongly alter sediment biogeochemistry. Here, we used laboratory incubations to ...
Oxygen depletion in coastal waters may lead to release of toxic sulfide from sediments. Cable bacter...
Cable bacteria have recently been identified in various sedimentary marine settings worldwide. These...
Cable bacteria are long, multicellular, filamentous bacteria that can conduct electrons over centime...
Cable bacteria induce long-distance electron transport in the seafloor and can exert a powerful cont...
Cable bacteria are multicellular, filamentous microorganisms that are capable of transporting electr...
Phosphorus is an essential nutrient for life. The release ofphosphorus from sediments is critical in...
Oxygen depletion in coastal waters may lead to release of toxic sulfide from sediments. Cable bacter...
Phosphorus is an essential nutrient for life. The release of phosphorus from sediments is critical i...
Abstract: Previous studies have demonstrated that e-SOx can regulate the sedimentary release of phos...
Recently, a novel electrogenic type of sulphur oxidation was documented in marine sediments, whereby...
Cable bacteria can strongly alter sediment biogeochemistry. Here, we used laboratory incubations to ...
Oxygen depletion in coastal waters may lead to release of toxic sulfide from sediments. Cable bacter...
Cable bacteria have recently been identified in various sedimentary marine settings worldwide. These...
Cable bacteria are long, multicellular, filamentous bacteria that can conduct electrons over centime...
Cable bacteria induce long-distance electron transport in the seafloor and can exert a powerful cont...
Cable bacteria are multicellular, filamentous microorganisms that are capable of transporting electr...
Phosphorus is an essential nutrient for life. The release ofphosphorus from sediments is critical in...
Oxygen depletion in coastal waters may lead to release of toxic sulfide from sediments. Cable bacter...
Phosphorus is an essential nutrient for life. The release of phosphorus from sediments is critical i...
Abstract: Previous studies have demonstrated that e-SOx can regulate the sedimentary release of phos...
Recently, a novel electrogenic type of sulphur oxidation was documented in marine sediments, whereby...