Physiological dynamics of chemosynthetic symbionts in hydrothermal vent snails

dc.contributor.author Breusing, Corinna
dc.contributor.author Mitchell, Jessica
dc.contributor.author Delaney, Jennifer
dc.contributor.author Sylva, Sean P.
dc.contributor.author Seewald, Jeffrey S.
dc.contributor.author Girguis, Peter R.
dc.contributor.author Beinart, Roxanne A.
dc.date.accessioned 2020-07-29T14:20:05Z
dc.date.available 2020-07-29T14:20:05Z
dc.date.issued 2020-07-02
dc.description © The Author(s), 2020. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Breusing, C., Mitchell, J., Delaney, J., Sylva, S. P., Seewald, J. S., Girguis, P. R., & Beinart, R. A. Physiological dynamics of chemosynthetic symbionts in hydrothermal vent snails. Isme Journal, (2020), doi:10.1038/s41396-020-0707-2. en_US
dc.description.abstract Symbioses between invertebrate animals and chemosynthetic bacteria form the basis of hydrothermal vent ecosystems worldwide. In the Lau Basin, deep-sea vent snails of the genus Alviniconcha associate with either Gammaproteobacteria (A. kojimai, A. strummeri) or Campylobacteria (A. boucheti) that use sulfide and/or hydrogen as energy sources. While the A. boucheti host–symbiont combination (holobiont) dominates at vents with higher concentrations of sulfide and hydrogen, the A. kojimai and A. strummeri holobionts are more abundant at sites with lower concentrations of these reductants. We posit that adaptive differences in symbiont physiology and gene regulation might influence the observed niche partitioning between host taxa. To test this hypothesis, we used high-pressure respirometers to measure symbiont metabolic rates and examine changes in gene expression among holobionts exposed to in situ concentrations of hydrogen (H2: ~25 µM) or hydrogen sulfide (H2S: ~120 µM). The campylobacterial symbiont exhibited the lowest rate of H2S oxidation but the highest rate of H2 oxidation, with fewer transcriptional changes and less carbon fixation relative to the gammaproteobacterial symbionts under each experimental condition. These data reveal potential physiological adaptations among symbiont types, which may account for the observed net differences in metabolic activity and contribute to the observed niche segregation among holobionts. en_US
dc.description.sponsorship We thank the Schmidt Ocean Institute, the crew of the R/V Falkor and the pilots of the ROV ROPOS for facilitating the sample collections and shipboard experiments, and the Broad Institute Microbial ‘Omics Core for preparing and sequencing the transcriptomic libraries. This material is based in part upon work supported by the National Science Foundation under Grant Numbers NSF OCE-1536653 (to PRG), OCE-1536331 (to RAB and JSS), OCE-1819530 and OCE-1736932 (to RAB). en_US
dc.identifier.citation Breusing, C., Mitchell, J., Delaney, J., Sylva, S. P., Seewald, J. S., Girguis, P. R., & Beinart, R. A. (2020). Physiological dynamics of chemosynthetic symbionts in hydrothermal vent snails. Isme Journal. en_US
dc.identifier.doi 10.1038/s41396-020-0707-2
dc.identifier.uri https://hdl.handle.net/1912/26016
dc.publisher Springer Nature en_US
dc.relation.uri https://doi.org/10.1038/s41396-020-0707-2
dc.rights Attribution 4.0 International *
dc.rights.uri http://creativecommons.org/licenses/by/4.0/ *
dc.title Physiological dynamics of chemosynthetic symbionts in hydrothermal vent snails en_US
dc.type Article en_US
dspace.entity.type Publication
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