The genome of deep-sea vent chemolithoautotroph Thiomicrospira crunogena XCL-2
- PMID: 17105352
- PMCID: PMC1635747
- DOI: 10.1371/journal.pbio.0040383
The genome of deep-sea vent chemolithoautotroph Thiomicrospira crunogena XCL-2
Abstract
Presented here is the complete genome sequence of Thiomicrospira crunogena XCL-2, representative of ubiquitous chemolithoautotrophic sulfur-oxidizing bacteria isolated from deep-sea hydrothermal vents. This gammaproteobacterium has a single chromosome (2,427,734 base pairs), and its genome illustrates many of the adaptations that have enabled it to thrive at vents globally. It has 14 methyl-accepting chemotaxis protein genes, including four that may assist in positioning it in the redoxcline. A relative abundance of coding sequences (CDSs) encoding regulatory proteins likely control the expression of genes encoding carboxysomes, multiple dissolved inorganic nitrogen and phosphate transporters, as well as a phosphonate operon, which provide this species with a variety of options for acquiring these substrates from the environment. Thiom. crunogena XCL-2 is unusual among obligate sulfur-oxidizing bacteria in relying on the Sox system for the oxidation of reduced sulfur compounds. The genome has characteristics consistent with an obligately chemolithoautotrophic lifestyle, including few transporters predicted to have organic allocrits, and Calvin-Benson-Bassham cycle CDSs scattered throughout the genome.
Conflict of interest statement
Competing interests. The authors have declared that no competing interests exist.
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Comment in
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Genomic insights into (extreme) life at the bottom of the sea.PLoS Biol. 2006 Dec;4(12):e425. doi: 10.1371/journal.pbio.0040425. Epub 2006 Nov 14. PLoS Biol. 2006. PMID: 20076510 Free PMC article. No abstract available.
References
-
- Karl DM, Wirsen CO, Jannasch HW. Deep-sea primary production at the Galápagos hydrothermal vents. Science. 1980;207:1345–1346.
-
- Kelley DS, Karson JA, Fruh-Green GL, Yoerger DR, Shank TM, et al. A serpentinite-hosted ecosystem: The lost city hydrothermal field. Science. 2005;307:1428–1434. - PubMed
-
- Johnson KS, Childress JJ, Beehler CL. Short term temperature variability in the Rose Garden hydrothermal vent field. Deep-Sea Res. 1988;35:1711–1722.
-
- Goffredi SK, Childress JJ, Desaulniers NT, Lee RW, Lallier FH, et al. Inorganic carbon acquisition by the hydrothermal vent tubeworm Riftia pachyptila depends upon high external P-CO2 and upon proton-equivalent ion transport by the worm. J Exp Biol. 1997;200:883–896. - PubMed
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