Filamentous sulfide oxidizing cable bacteria are capable of linking the oxidation of free sulfide in deep anoxic layers of marine sediments to the reduction of oxygen or nitrate in surface sediments by conducting electrons over centimeter-scale distances. Previous studies have shown that this newly discovered microbial process, referred to as electrogenic sulfide oxidation (e-SOx), may alter elemental cycling in sediments, but the nature and rates of the resulting biogeochemical transformations and their influence on benthic-pelagic coupling remain largely unknown. Here we quantify changes in sediment geochemistry and solute fluxes at the sediment–water interface as e-SOx develops and declines over time in laboratory incubations of organic-...
Recently, long filamentous bacteria have been reported conducting electrons over centimetre distance...
Recently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sediments, w...
AbstractRecently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sedi...
AbstractFilamentous sulfide oxidizing cable bacteria are capable of linking the oxidation of free su...
Filamentous sulfide oxidizing cable bacteria are capable of linking the oxidation of free sulfide in...
Electrogenic sulfur oxidation (e-SOx) is a newly discovered pathway of microbial sulfide oxidation, ...
Cable bacteria have recently been identified in various sedimentary marine settings worldwide. These...
Cable bacteria have recently been identified in various sedimentary marine settings worldwide. These...
Recently, a novel mode of sulphur oxidation was described in marine sediments, in which sulphide oxi...
Eutrophication and global change are increasing the occurrence of seasonal hypoxia (bottom-water oxy...
Cable bacteria can strongly alter sediment biogeochemistry. Here, we used laboratory incubations to ...
Long-term experimental studies suggest that, under transient anoxic conditions, redox fronts within ...
Recently, long filamentous bacteria have been reported conducting electrons over centimetre distance...
Recently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sediments, w...
AbstractRecently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sedi...
AbstractFilamentous sulfide oxidizing cable bacteria are capable of linking the oxidation of free su...
Filamentous sulfide oxidizing cable bacteria are capable of linking the oxidation of free sulfide in...
Electrogenic sulfur oxidation (e-SOx) is a newly discovered pathway of microbial sulfide oxidation, ...
Cable bacteria have recently been identified in various sedimentary marine settings worldwide. These...
Cable bacteria have recently been identified in various sedimentary marine settings worldwide. These...
Recently, a novel mode of sulphur oxidation was described in marine sediments, in which sulphide oxi...
Eutrophication and global change are increasing the occurrence of seasonal hypoxia (bottom-water oxy...
Cable bacteria can strongly alter sediment biogeochemistry. Here, we used laboratory incubations to ...
Long-term experimental studies suggest that, under transient anoxic conditions, redox fronts within ...
Recently, long filamentous bacteria have been reported conducting electrons over centimetre distance...
Recently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sediments, w...
AbstractRecently, a novel “electrogenic” type of sulfur oxidation has been documented in marine sedi...