The biodegradation of organic pollutants in aquifers is often restricted to the fringes of contaminant plumes where steep countergradients of electron donors and acceptors are separated by limited dispersive mixing. However, long-distance electron transfer (LDET) by filamentous 'cable bacteria' has recently been discovered in marine sediments to couple spatially separated redox half reactions over centimeter scales. Here we provide primary evidence that such sulfur-oxidizing cable bacteria can also be found at oxic-anoxic interfaces in aquifer sediments, where they provide a means for the direct recycling of sulfate by electron transfer over 1-2-cm distance. Sediments were taken from a hydrocarbon-contaminated aquifer, amended with ...
In 2010, a completely novel type of microbial metabolism was discovered in marine sediments, which i...
Cable bacteria can strongly alter sediment biogeochemistry. Here, we used laboratory incubations to ...
Recently, a novel electrogenic type of sulphur oxidation was documented in marine sediments, whereby...
In marine sediments, filamentous Desulfobulbaceae have been shown to bridge sulfide oxidation and ox...
Cable bacteria (CB) perform electrogenic sulphur oxidation (e-SOX) by spatially separating redox-hal...
In marine sediments cathodic oxygen reduction at the sediment surface can be coupled to anodic sulfi...
Cable bacteria are long, multicellular, filamentous bacteria that can conduct electrons over centime...
Recently, long filamentous bacteria have been reported conducting electrons over centimetre distance...
Recently, long filamentous bacteria, belonging to the family Desulfobulbaceae, were shown to induce ...
Recently, a novel mode of sulphur oxidation was described in marine sediments, in which sulphide oxi...
Microorganisms spend their lives searching for chemical reactants that yield metabolically usable en...
Recently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sediments, w...
Cable bacteria are long, filamentoussulphur-oxidizing bacteria that induce long-distanceelectron tra...
AbstractRecently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sedi...
In 2010, a completely novel type of microbial metabolism was discovered in marine sediments, which i...
Cable bacteria can strongly alter sediment biogeochemistry. Here, we used laboratory incubations to ...
Recently, a novel electrogenic type of sulphur oxidation was documented in marine sediments, whereby...
In marine sediments, filamentous Desulfobulbaceae have been shown to bridge sulfide oxidation and ox...
Cable bacteria (CB) perform electrogenic sulphur oxidation (e-SOX) by spatially separating redox-hal...
In marine sediments cathodic oxygen reduction at the sediment surface can be coupled to anodic sulfi...
Cable bacteria are long, multicellular, filamentous bacteria that can conduct electrons over centime...
Recently, long filamentous bacteria have been reported conducting electrons over centimetre distance...
Recently, long filamentous bacteria, belonging to the family Desulfobulbaceae, were shown to induce ...
Recently, a novel mode of sulphur oxidation was described in marine sediments, in which sulphide oxi...
Microorganisms spend their lives searching for chemical reactants that yield metabolically usable en...
Recently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sediments, w...
Cable bacteria are long, filamentoussulphur-oxidizing bacteria that induce long-distanceelectron tra...
AbstractRecently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sedi...
In 2010, a completely novel type of microbial metabolism was discovered in marine sediments, which i...
Cable bacteria can strongly alter sediment biogeochemistry. Here, we used laboratory incubations to ...
Recently, a novel electrogenic type of sulphur oxidation was documented in marine sediments, whereby...