The chemolithoautotrophic strain Beggiatoa sp. 35Flor shows an unusual migration behavior when cultivated in a gradient medium under high sulfide fluxes. As common for Beggiatoa spp., the filaments form a mat at the oxygen–sulfide interface. However, upon prolonged incubation, a subpopulation migrates actively downward into the anoxic and sulfidic section of the medium, where the filaments become gradually depleted in their sulfur and polyhydroxyalkanoates (PHA) inclusions. This depletion is correlated with the production of hydrogen sulfide. The sulfur- and PHA-depleted filaments return to the oxygen–sulfide interface, where they switch back to depositing sulfur and PHA by aerobic sulfide oxidation. Based on these observations we conclude ...
Thiobios (sulfide-dependent) meiofauna have an aerobic metabolism, are sulfide-insensitive and rarel...
ABSTRACT Sulfur-oxidizing bacteria from the SUP05 clade are abundant in anoxic and oxygenated marine...
Large, colorless sulfur-oxidizing bacteria (LSB) of the family Beggiatoaceae form thick mats at sulf...
The chemolithoautotrophic strain Beggiatoa sp. 35Flor shows an unusual migration behavior when culti...
Large filamentous sulfide-oxidizing bacteria are capable of forming huge microbial mats at the oxic-...
The large sulfur bacteria, Beggiatoa spp., live on the oxidation of sulfide with oxygen or nitrate, ...
Marine sediments are frequently covered by mats of the filamentous Beggiatoa and other large nitrate...
The ecological niche of nitrate-storing Beggiatoa, and their contribution to the removal of sulfide ...
Large filamentous sulfide-oxidizing bacteria are capable of forming huge microbial mats at the oxic-...
Marine sediments are frequently covered by mats of the filamentous Beggiatoa and other large nitrate...
Marine sediments are frequently covered by mats of the filamentous Beggiatoa and other large nitrate...
Beggiatoa inhabit the microoxic zone in sediments. They oxidize reduced sulfur compounds such as sul...
A chemolithoautotrophic strain of the family Beggiatoaceae, Beggiatoa sp. strain 35Flor, was found t...
Anaerobic sulfide oxidation with nitrate by a freshwater Beggiatoa enrichment cultur
Eutrophication and global climate change lead to expansion of hypoxia in the ocean, often accompanie...
Thiobios (sulfide-dependent) meiofauna have an aerobic metabolism, are sulfide-insensitive and rarel...
ABSTRACT Sulfur-oxidizing bacteria from the SUP05 clade are abundant in anoxic and oxygenated marine...
Large, colorless sulfur-oxidizing bacteria (LSB) of the family Beggiatoaceae form thick mats at sulf...
The chemolithoautotrophic strain Beggiatoa sp. 35Flor shows an unusual migration behavior when culti...
Large filamentous sulfide-oxidizing bacteria are capable of forming huge microbial mats at the oxic-...
The large sulfur bacteria, Beggiatoa spp., live on the oxidation of sulfide with oxygen or nitrate, ...
Marine sediments are frequently covered by mats of the filamentous Beggiatoa and other large nitrate...
The ecological niche of nitrate-storing Beggiatoa, and their contribution to the removal of sulfide ...
Large filamentous sulfide-oxidizing bacteria are capable of forming huge microbial mats at the oxic-...
Marine sediments are frequently covered by mats of the filamentous Beggiatoa and other large nitrate...
Marine sediments are frequently covered by mats of the filamentous Beggiatoa and other large nitrate...
Beggiatoa inhabit the microoxic zone in sediments. They oxidize reduced sulfur compounds such as sul...
A chemolithoautotrophic strain of the family Beggiatoaceae, Beggiatoa sp. strain 35Flor, was found t...
Anaerobic sulfide oxidation with nitrate by a freshwater Beggiatoa enrichment cultur
Eutrophication and global climate change lead to expansion of hypoxia in the ocean, often accompanie...
Thiobios (sulfide-dependent) meiofauna have an aerobic metabolism, are sulfide-insensitive and rarel...
ABSTRACT Sulfur-oxidizing bacteria from the SUP05 clade are abundant in anoxic and oxygenated marine...
Large, colorless sulfur-oxidizing bacteria (LSB) of the family Beggiatoaceae form thick mats at sulf...