Insights into the genome of large sulfur bacteria revealed by analysis of single filaments

被引:123
作者
Mussmann, Marc
Hu, Fen Z.
Richter, Michael
de Beer, Dirk
Preisler, Andre
Jorgensen, Bo B.
Huntemann, Marcel
Gloeckner, Frank Oliver
Amann, Rudolf
Koopman, Werner J. H.
Lasken, Roger S.
Janto, Benjamin
Hogg, Justin
Stoodley, Paul
Boissy, Robert
Ehrlich, Garth D.
机构
[1] Max Planck Inst Marine Microbiol, Bremen, Germany
[2] Allegheny Gen Hosp, Allegheny Singer Res Inst, Ctr Genom Sci, Pittsburgh, PA 15212 USA
[3] Jacobs Univ Bremen, Sch Sci & Engn, Bremen, Germany
[4] Radboud Univ Nijmegen Med Ctr, Nijmegen Ctr Mol Life Sci, Dept Membrane Biochem, Nijmegen, Netherlands
[5] Craig Venter Inst, Rockville, MD USA
关键词
D O I
10.1371/journal.pbio.0050230
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Marine sediments are frequently covered by mats of the filamentous Beggiatoa and other large nitrate-storing bacteria that oxidize hydrogen sulfide using either oxygen or nitrate, which they store in intracellular vacuoles. Despite their conspicuous metabolic properties and their biogeochemical importance, little is known about their genetic repertoire because of the lack of pure cultures. Here, we present a unique approach to access the genome of single filaments of Beggiatoa by combining whole genome amplification, pyrosequencing, and optical genome mapping. Sequence assemblies were incomplete and yielded average contig sizes of approximately 1 kb. Pathways for sulfur oxidation, nitrate and oxygen respiration, and CO2 fixation confirm the chemolithoautotrophic physiology of Beggiatoa. In addition, Beggiatoa potentially utilize inorganic sulfur compounds and dimethyl sulfoxide as electron acceptors. We propose a mechanism of vacuolar nitrate accumulation that is linked to proton translocation by vacuolar-type ATPases. Comparative genomics indicates substantial horizontal gene transfer of storage, metabolic, and gliding capabilities between Beggiatoa and cyanobacteria. These capabilities enable Beggiatoa to overcome non-overlapping availabilities of electron donors and acceptors while gliding between oxic and sulfidic zones. The first look into the genome of these filamentous sulfur-oxidizing bacteria substantially deepens the understanding of their evolution and their contribution to sulfur and nitrogen cycling in marine sediments.
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页码:1923 / 1937
页数:15
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