Sulphate-reducing bacteria are important players in the global sulphur and carbon cycles, with considerable economical and ecological impact. However, the process of sulphate respiration is still incompletely understood. Several mechanisms of energy conservation have been proposed, but it is unclear how the different strategies contribute to the overall process. In order to obtain a deeper insight into the energy metabolism of sulphate-reducers whole-genome microarrays were used to compare the transcriptional response of Desulfovibrio vulgaris Hildenborough grown with hydrogen/sulphate, pyruvate/sulphate, pyruvate with limiting sulphate, and lactate/thiosulphate, relative to growth in lactate/sulphate. Growth with hydrogen/sulphate showed t...
Many of the proteins that are candidates for bioenergetic pathways involved with sulfate respiration...
The number of sequenced genomes of sulfate reducing organisms (SRO) has increased significantly in t...
The Gram-negative Deltaproteobacterium D. vulgaris Hildenborough is able to grow with sulfate, sulfi...
Sulphate-reducing bacteria are important players in the global sulphur and carbon cycles, with consi...
Desulfovibrio vulgaris is a metabolically flexible micro-organism. It can use sulfate as an electron...
Sulfate reducing bacteria (SRB) play an important role in global sulfur and carbon cycling through t...
Energy conservation by the pathway of dissimilatory sulfate reduction is present in a diverse group ...
Interspecies hydrogen transfer between organisms producing and consuming hydrogen promotes the decom...
Interspecies hydrogen transfer between organisms producing and consuming hydrogen promotes the decom...
Comparison of the proteomes of the wild-type and Fe-only hydrogenase mutant strains of Desulfovibrio...
Progress in the genetic manipulation of the Desulfovibrio strains has provided an opportunity to exp...
Interspecies hydrogen transfer between organisms producing and consuming hydrogen promotes the decom...
In the absence of electron acceptors, many Desulfovibrio species grow on non-fermentable substrates ...
Energy conservation via the pathway of dissimilatory sulfate reduction is present in a diverse group...
BackgroundDesulfovibrio vulgaris Hildenborough is a sulfate-reducing bacterium (SRB) that is intensi...
Many of the proteins that are candidates for bioenergetic pathways involved with sulfate respiration...
The number of sequenced genomes of sulfate reducing organisms (SRO) has increased significantly in t...
The Gram-negative Deltaproteobacterium D. vulgaris Hildenborough is able to grow with sulfate, sulfi...
Sulphate-reducing bacteria are important players in the global sulphur and carbon cycles, with consi...
Desulfovibrio vulgaris is a metabolically flexible micro-organism. It can use sulfate as an electron...
Sulfate reducing bacteria (SRB) play an important role in global sulfur and carbon cycling through t...
Energy conservation by the pathway of dissimilatory sulfate reduction is present in a diverse group ...
Interspecies hydrogen transfer between organisms producing and consuming hydrogen promotes the decom...
Interspecies hydrogen transfer between organisms producing and consuming hydrogen promotes the decom...
Comparison of the proteomes of the wild-type and Fe-only hydrogenase mutant strains of Desulfovibrio...
Progress in the genetic manipulation of the Desulfovibrio strains has provided an opportunity to exp...
Interspecies hydrogen transfer between organisms producing and consuming hydrogen promotes the decom...
In the absence of electron acceptors, many Desulfovibrio species grow on non-fermentable substrates ...
Energy conservation via the pathway of dissimilatory sulfate reduction is present in a diverse group...
BackgroundDesulfovibrio vulgaris Hildenborough is a sulfate-reducing bacterium (SRB) that is intensi...
Many of the proteins that are candidates for bioenergetic pathways involved with sulfate respiration...
The number of sequenced genomes of sulfate reducing organisms (SRO) has increased significantly in t...
The Gram-negative Deltaproteobacterium D. vulgaris Hildenborough is able to grow with sulfate, sulfi...