Results 51 to 60 of about 112,078 (164)
Oxygen-dependent growth of the obligate anaerobe Desulfovibrio vulgaris Hildenborough [PDF]
Desulfovibrio vulgaris Hildenborough, a sulfate-reducing bacterium classified as an obligate anaerobe, swam to a preferred oxygen concentration of 0.02 to 0.04% (0.24 to 0.48 microM), a level which also supported growth. Oxygen concentrations of 0.08% and higher arrested growth.
M S, Johnson +3 more
openaire +2 more sources
Estudo das "Hybrid Cluster Proteins" de Desulfovibrio vulgaris Hildenborough
Tese de mestrado em Bioquímica, apresentada à Universidade de Lisboa, através da Faculdade de Ciências, 2012As Hybrid Cluster Proteins são proteínas de ferro‐enxofre que apresentam propriedades muito particulares como possuir um cluster único (hybrid ...
Pereira, Fábio Alexandre Paulino
core +3 more sources
Characterization of a Ferredoxin from Desulfovibrio Vulgaris (Hildenborough) that Interacts with RNA [PDF]
The purification and characterization of a ferredoxin from Desulfovibrio vulgaris (Hildenborough) is described. The protein can be isolated in two forms; the major form is strongly complexed to RNA, while a minor form is free from nucleic acid. Bound RNA cannot be removed by digestion with nucleases, or by heating to 70 °C, and it can only be partially
Arendsen, A.F. +3 more
openaire +2 more sources
Desulfovibrio vulgaris Hildenborough Genetic Constructs
The dissimilatory sulfate-reducing Deltaproteobacterium, Desulfovibrio vulgaris Hildenborough (ATCC 29579), was chosen by the LBNL-led research collaboration ENIGMA to explore tools and protocols for bringing this anaerobe to model status.
Deutschbauer, Adam +13 more
core +1 more source
Integrated structural analysis of N. vulgaris formate dehydrogenase AB, an enzyme with applications in climate change mitigation, is reported. The substrate/product diffusion pathways were fully mapped, and a retention site was identified that transiently holds substrates and has a key role in CO2‐reducing activity.
Guilherme Vilela‐Alves +8 more
wiley +2 more sources
Study of nitrate stress in Desulfovibrio vulgaris Hildenborough using iTRAQ proteomics [PDF]
The response of Desulfovibrio vulgaris Hildenborough (DvH), a sulphate-reducing bacterium, to nitrate stress was examined using quantitative proteomic analysis. DvH was stressed with 105 mM sodium nitrate (NaNO(3)), a level that caused a 50% inhibition in growth. The protein profile of stressed cells was compared with that of cells grown in the absence
Redding, A. M. +4 more
openaire +4 more sources
Bio‐Inspired Self‐Assembly of Enzyme‐Micelle Systems for Semi‐Artificial Photosynthesis
This study introduces a bio‐hybrid assembly inspired by lipid‐protein interactions in nature by utilizing photosensitized surfactants that self‐assemble into light‐absorbing micellar scaffolds capable of interfacing with hydrogenases and formate dehydrogenases. This semi‐artificial approach enabled benchmark turnover numbers for solar H2 production and
Yongpeng Liu +14 more
wiley +2 more sources
Syntrophic growth on formate: a new microbial niche in anoxic environments [PDF]
Anaerobic syntrophic associations of fermentative bacteria and methanogenic archaea operate at the thermodynamic limits of life. The interspecies transfer of electrons from formate or hydrogen as a substrate for the methanogens is key.
Plugge, C.M. +4 more
core +1 more source
The Effect of Hydrogen on the Growth of Desulfovibrio vulgaris (Hildenborough) on Lactate [PDF]
Summary: Desulfovibrio vulgaris (Hildenborough) was grown on lactate with either a N2/CO2 or a H2/CO2 gas phase. H2 increased the growth yield on lactate and had a sparing effect on lactate utilization, without altering the growth rate or hydrogenase level. Growth on acetate plus CO2 with H2 as sole energy source did not require an extensive adaptation
I. P. Pankhania +2 more
openaire +1 more source
Elektroenzymatische CO2‐Fixierung
Die elektroenzymatische CO2‐Fixierung ermöglicht eine energieeffiziente, hochselektive Synthese komplexer Moleküle. Um ihr volles Potenzial auszuschöpfen, ist ein grundlegendes Verständnis von elektrodengekoppelten Reduktasen und Carboxylasen erforderlich.
Leonardo Castañeda‐Losada +4 more
wiley +1 more source

