Genome sequence of the sulfur-oxidizing Bathymodiolus thermophilus gill endosymbiont

dc.contributor.author Ponnudurai, Ruby
dc.contributor.author Sayavedra, Lizbeth
dc.contributor.author Kleiner, Manuel
dc.contributor.author Heiden, Stefan E.
dc.contributor.author Thürmer, Andrea
dc.contributor.author Felbeck, Horst
dc.contributor.author Schlüter, Rabea
dc.contributor.author Sievert, Stefan M.
dc.contributor.author Daniel, Rolf
dc.contributor.author Schweder, Thomas
dc.contributor.author Markert, Stephanie
dc.date.accessioned 2017-09-28T16:30:30Z
dc.date.available 2017-09-28T16:30:30Z
dc.date.issued 2017-09-02
dc.description © The Author(s), 2017. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Standards in Genomic Sciences 12 (2017): 50, doi:10.1186/s40793-017-0266-y. en_US
dc.description.abstract Bathymodiolus thermophilus, a mytilid mussel inhabiting the deep-sea hydrothermal vents of the East Pacific Rise, lives in symbiosis with chemosynthetic Gammaproteobacteria within its gills. The intracellular symbiont population synthesizes nutrients for the bivalve host using the reduced sulfur compounds emanating from the vents as energy source. As the symbiont is uncultured, comprehensive and detailed insights into its metabolism and its interactions with the host can only be obtained from culture-independent approaches such as genomics and proteomics. In this study, we report the first draft genome sequence of the sulfur-oxidizing symbiont of B. thermophilus, here tentatively named Candidatus Thioglobus thermophilus. The draft genome (3.1 Mb) harbors 3045 protein-coding genes. It revealed pathways for the use of sulfide and thiosulfate as energy sources and encodes the Calvin-Benson-Bassham cycle for CO2 fixation. Enzymes required for the synthesis of the tricarboxylic acid cycle intermediates oxaloacetate and succinate were absent, suggesting that these intermediates may be substituted by metabolites from external sources. We also detected a repertoire of genes associated with cell surface adhesion, bacteriotoxicity and phage immunity, which may perform symbiosis-specific roles in the B. thermophilus symbiosis. en_US
dc.description.sponsorship This study was supported by the EU-funded Marie Curie Initial Training Network “Symbiomics” (project no. 264774). RP was supported by a fellowship of the Institute of Marine Biotechnology, Greifswald. MK was supported by a NSERC Banting Postdoctoral Fellowship. LS was supported by a DAAD scholarship. SMS was supported by US National Science Foundation grant OCE-1136727. en_US
dc.identifier.citation Standards in Genomic Sciences 12 (2017): 50 en_US
dc.identifier.doi 10.1186/s40793-017-0266-y
dc.identifier.uri https://hdl.handle.net/1912/9257
dc.language.iso en en_US
dc.publisher BioMed Central en_US
dc.relation.uri https://doi.org/10.1186/s40793-017-0266-y
dc.rights Attribution 4.0 International *
dc.rights.uri http://creativecommons.org/licenses/by/4.0/ *
dc.subject Uncultured endosymbiont en_US
dc.subject Hydrothermal vents en_US
dc.subject Marine invertebrate symbiosis en_US
dc.subject Thiotrophy en_US
dc.subject Autotrophy en_US
dc.subject Atlantis (Ship : 1996-) Cruise AT26-10
dc.title Genome sequence of the sulfur-oxidizing Bathymodiolus thermophilus gill endosymbiont en_US
dc.type Article en_US
dspace.entity.type Publication
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