Pre_GI: SWBIT SVG BLASTN

Query: NC_009720:2143124 Xanthobacter autotrophicus Py2, complete genome

Lineage: Xanthobacter autotrophicus; Xanthobacter; Xanthobacteraceae; Rhizobiales; Proteobacteria; Bacteria

General Information: Alkene-degrading bacterium. Xanthobacter autotrophicus is a nitrogen-fixing methylotroph, commonly isolated from organic rich soil, sediment and water. This organism uses an alkene-specific monooxygenase to convert propene to epoxypropane. This monooxygenase is also able to catalyze the initial step in the cometabolism of chlorinated alkenes such as vinyl chloride and trichloroethene. The Xanthobacter autotrophicus alkene monooxygenase and other genes involved in alkene degradation are located on a 320 kb megaplasmid.

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Subject: NC_021182:93000 Clostridium pasteurianum BC1, complete genome

Lineage: Clostridium pasteurianum; Clostridium; Clostridiaceae; Clostridiales; Firmicutes; Bacteria

General Information: Environment: Soil; Isolation: Coal-cleaning residues; Temp: Mesophile; Temp: 30C. This genus comprises about 150 metabolically diverse species of anaerobes that are ubiquitous in virtually all anoxic habitats where organic compounds are present, including soils, aquatic sediments and the intestinal tracts of animals and humans. This shape is attributed to the presence of endospores that develop under conditions unfavorable for vegetative growth and distend single cells terminally or sub-terminally. Spores germinate under conditions favorable for vegetative growth, such as anaerobiosis and presence of organic substrates. It is believed that present day Mollicutes (Eubacteria) have evolved regressively (i.e., by genome reduction) from gram-positive clostridia-like ancestors with a low GC content in DNA. Known opportunistic toxin-producing pathogens in animals and humans. Some species are capable of producing organic solvents (acetone, ethanol, etc,), molecular hydrogen and other useful compounds. Clostridium pasteurianum was first isolated from soil by the Russian microbiologist Sergey Winogradsky. This organism is able to fix nitrogen and oxidize hydrogen into protons. The genes involved in nitrogen fixation and hydrogen oxidation have been extensively studied in this organism.