Technical note: The silicon isotopic composition of choanoflagellates: implications for a mechanistic understanding of isotopic fractionation during biosilicification
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Published:2019-12-17
Issue:24
Volume:16
Page:4805-4813
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ISSN:1726-4189
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Container-title:Biogeosciences
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language:en
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Short-container-title:Biogeosciences
Author:
Marron Alan, Cassarino Lucie, Hatton JadeORCID, Curnow Paul, Hendry Katharine R.
Abstract
Abstract. The marine silicon cycle is intrinsically linked with carbon cycling in the oceans via biological production of silica by a wide range of organisms. The stable silicon isotopic composition (denoted by δ30Si) of siliceous microfossils extracted from sediment cores can be used as an archive of past oceanic silicon cycling. However, the silicon isotopic composition of biogenic silica has only been measured in diatoms, sponges and radiolarians, and isotopic fractionation relative to seawater is entirely unknown for many other silicifiers. Furthermore, the biochemical pathways and mechanisms that determine isotopic fractionation during biosilicification remain poorly understood.
Here, we present the first measurements of the silicon isotopic fractionation during biosilicification by loricate choanoflagellates, a group of protists closely related to animals. We cultured two species of choanoflagellates, Diaphanoeca grandis and Stephanoeca diplocostata, which showed consistently greater isotopic fractionation (approximately −5 ‰ to −7 ‰) than cultured diatoms (−0.5 ‰ to −2.1 ‰). Instead, choanoflagellate silicon isotopic fractionation appears to be more similar to sponges grown under similar dissolved silica concentrations. Our results highlight that there is a taxonomic component to silicon isotope fractionation during biosilicification, possibly via a shared or related biochemical transport pathway. These findings have implications for the use of biogenic silica δ30Si produced by different silicifiers as proxies for past oceanic change.
Funder
European Research Council Royal Society
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Ecology, Evolution, Behavior and Systematics
Reference70 articles.
1. Adl, S. M., Bass, D., Lane, C. E., Lukes, J., Schoch, C. L., Smirnov, A.,
Agatha, S., Berney, C., Brown, M. W., Burki, F., Cardenas, P., Cepicka, I.,
Chistyakova, L., del Campo, J., Dunthorn, M., Edvardsen, B., Eglit, Y.,
Guillou, L., Hampl, V., Heiss, A. A., Hoppenrath, M., James, T. Y.,
Karnkowska, A., Karpov, S., Kim, E., Kolisko, M., Kudryavtsev, A., Lahr, D.
J. G., Lara, E., Le Gall, L., Lynn, D. H., Mann, D. G., Massana, R.,
Mitchell, E. A. D., Morrow, C., Park, J. S., Pawlowski, J. W., Powell, M. J.,
Richter, D. J., Rueckert, S., Shadwick, L., Shimano, S., Spiegel, F. W.,
Torruella, G., Youssef, N., Zlatogursky, V., and Zhang, Q.: Revisions to the
Classification, Nomenclature, and Diversity of Eukaryotes, J.
Eukaryot. Microbiol., 66, 4–119, https://doi.org/10.1111/jeu.12691, 2019. a 2. Andersen, P.: Functional biology of the choanoflagellate Diaphanoeca grandis
Ellis, Marine Microbial Food Webs, 3, 35–49, 1988. a 3. Beucher, C. P., Brzezinski, M. A., and Jones, J. L.: Sources and biological
fractionation of Silicon isotopes in the Eastern Equatorial Pacific,
Geochim. Cosmochim. Ac., 72, 3063–3073, 2008. a 4. Cardinal, D., Alleman, L. Y., de Jong, J., Ziegler, K., and André, L.:
Isotopic composition of silicon measured by multicollector plasma source mass
spectrometry in dry plasma mode, J. Anal. Atom. Spectrom.,
18, 213–218, 2003. a 5. Cassarino, L., Coath, C. D., Xavier, J. R., and Hendry, K. R.: Silicon isotopes of deep sea sponges: new insights into biomineralisation and skeletal structure, Biogeosciences, 15, 6959–6977, https://doi.org/10.5194/bg-15-6959-2018, 2018. a, b, c
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