Aquabacterium parvum B6 is a potential nitrate-dependent Fe(II)-oxidizing bacterium. The genes related to its denitrifying mechanism and iron metabolisms were unknown. We present the draft genome of Aquabacterium parvum B6, which could provide further insight into the nitrate-dependent Fe(II)-oxidizing mechanism of strain B6
The extensive application of fertilizers for growing rice results in a large input of nitrogen into ...
Microbial nitrate-dependent Fe(II) oxidation is known to contribute to iron biogeochemical cycling; ...
Thiobacillus denitrificans is a chemolithoautotrophic bacterium capable of anaerobic, nitrate-depend...
Pseudogulbenkiania ferrooxidans strain 2002 was isolated as a lithoautotrophic, Fe(II)-oxidizing, ni...
A lithoautotrophic, Fe(II) oxidizing, nitratereducing bacterium, strain 2002 (ATCC BAA-1479; =DSM 18...
Acidovorax ebreus strain TPSY is the first anaerobic nitrate-dependent Fe(II) oxidizer for which the...
The draft genomes of the nitrate-dependent iron-oxidizing bacteria Acidovorax sp. strain BoFeN1 and ...
In previous studies, three different strains (BrG1, BrG2, and BrG3) of ferrous iron-oxidizing, nitra...
In previous studies, three different strains (BrG1, BrG2, and BrG3) of ferrous iron-oxidizing, nitra...
In previous studies, three different strains (BrG1, BrG2, and BrG3) of ferrous iron-oxidizing, nitra...
We report here the draft genome sequence of Ardenticatena maritima 110S, the first sequenced member ...
Microbial nitrate-dependent Fe(II) oxidation is known to contribute to iron biogeochemical cycling; ...
Marinobacter santoriniensis NKSG1(T) originates from metalliferous marine sediment. It can respire a...
SECTION 1 Iron is the fourth most abundant element on the earth crust as well as an essential nutrie...
Anaerobic, nitrate-dependent microbial oxidation of ferrous iron was recently recognized as a new ty...
The extensive application of fertilizers for growing rice results in a large input of nitrogen into ...
Microbial nitrate-dependent Fe(II) oxidation is known to contribute to iron biogeochemical cycling; ...
Thiobacillus denitrificans is a chemolithoautotrophic bacterium capable of anaerobic, nitrate-depend...
Pseudogulbenkiania ferrooxidans strain 2002 was isolated as a lithoautotrophic, Fe(II)-oxidizing, ni...
A lithoautotrophic, Fe(II) oxidizing, nitratereducing bacterium, strain 2002 (ATCC BAA-1479; =DSM 18...
Acidovorax ebreus strain TPSY is the first anaerobic nitrate-dependent Fe(II) oxidizer for which the...
The draft genomes of the nitrate-dependent iron-oxidizing bacteria Acidovorax sp. strain BoFeN1 and ...
In previous studies, three different strains (BrG1, BrG2, and BrG3) of ferrous iron-oxidizing, nitra...
In previous studies, three different strains (BrG1, BrG2, and BrG3) of ferrous iron-oxidizing, nitra...
In previous studies, three different strains (BrG1, BrG2, and BrG3) of ferrous iron-oxidizing, nitra...
We report here the draft genome sequence of Ardenticatena maritima 110S, the first sequenced member ...
Microbial nitrate-dependent Fe(II) oxidation is known to contribute to iron biogeochemical cycling; ...
Marinobacter santoriniensis NKSG1(T) originates from metalliferous marine sediment. It can respire a...
SECTION 1 Iron is the fourth most abundant element on the earth crust as well as an essential nutrie...
Anaerobic, nitrate-dependent microbial oxidation of ferrous iron was recently recognized as a new ty...
The extensive application of fertilizers for growing rice results in a large input of nitrogen into ...
Microbial nitrate-dependent Fe(II) oxidation is known to contribute to iron biogeochemical cycling; ...
Thiobacillus denitrificans is a chemolithoautotrophic bacterium capable of anaerobic, nitrate-depend...