Cable bacteria form centimeter-long, multicellular filaments than can consist of ten thousands of cells. They evolved a unique energy metabolism that involves co-operation among cells that separately perform oxidation of the electron donor (sulfide, H2S) and reduction of the electron acceptor (oxygen, O2). This division of labor is facilitated via long-range electrical currents that run from cell to cell along a network of conductive fibers. This research provides further insights into the metabolism of these peculiar organisms. It was discovered that only the cells that oxidize sulfide have the capacity for growth whereas the cells that reduce oxygen serve to dispense electrons as quickly as possible without any growth. Thus, these oxygen-...
Cable bacteria are long, multicellular, filamentous bacteria that can conduct electrons over centime...
Cable bacteria are centimeters-long filamentous bacteria that oxidize sulfide in anoxic sediment lay...
Recently, a novel electrogenic type of sulphur oxidation was documented in marine sediments, whereby...
Cable bacteria form centimeter-long, multicellular filaments than can consist of ten thousands of ce...
Cable bacteria are multicellular sulfide oxidizing bacteria that display a unique metabolism based o...
Multicellularity is a key evolutionary innovation, leading to coordinated activity and resource shar...
Cable bacteria are multicellular, Gram-negative filamentous bacteria that display a unique division ...
Microorganisms spend their lives searching for chemical reactants that yield metabolically usable en...
In 2010, a completely novel type of microbial metabolism was discovered in marine sediments, which i...
Cable bacteria are long, multicellular micro-organisms that are capable of transporting electrons fr...
Electron transport within living cells is essential for energy conservation in all respiring and pho...
Multicellular, filamentous, sulfur-oxidizing bacteria, known as cable bacteria, were discovered atta...
Cable bacteria are long, multicellular, filamentous bacteria that can conduct electrons over centime...
Cable bacteria are centimeters-long filamentous bacteria that oxidize sulfide in anoxic sediment lay...
Recently, a novel electrogenic type of sulphur oxidation was documented in marine sediments, whereby...
Cable bacteria form centimeter-long, multicellular filaments than can consist of ten thousands of ce...
Cable bacteria are multicellular sulfide oxidizing bacteria that display a unique metabolism based o...
Multicellularity is a key evolutionary innovation, leading to coordinated activity and resource shar...
Cable bacteria are multicellular, Gram-negative filamentous bacteria that display a unique division ...
Microorganisms spend their lives searching for chemical reactants that yield metabolically usable en...
In 2010, a completely novel type of microbial metabolism was discovered in marine sediments, which i...
Cable bacteria are long, multicellular micro-organisms that are capable of transporting electrons fr...
Electron transport within living cells is essential for energy conservation in all respiring and pho...
Multicellular, filamentous, sulfur-oxidizing bacteria, known as cable bacteria, were discovered atta...
Cable bacteria are long, multicellular, filamentous bacteria that can conduct electrons over centime...
Cable bacteria are centimeters-long filamentous bacteria that oxidize sulfide in anoxic sediment lay...
Recently, a novel electrogenic type of sulphur oxidation was documented in marine sediments, whereby...