From the Surface Ocean to the Seafloor: Linking Modern and Paleo‐Genetics at the Sabrina Coast, East Antarctica (IN2017_V01)

Author:

Armbrecht Linda1ORCID,Focardi Amaranta2ORCID,Lawler Kelly‐Anne3ORCID,O’Brien Phil3ORCID,Leventer Amy4ORCID,Noble Taryn L.1ORCID,Opdyke Bradley3ORCID,Duffy Meghan5,Evangelinos Dimitris6ORCID,George Simon C.7ORCID,Lieser Jan1ORCID,López‐Quirós Adrián89ORCID,Post Alix10ORCID,Ostrowski Martin2,Paulsen Ian7,Armand Leanne3

Affiliation:

1. Institute for Marine and Antarctic Studies University of Tasmania TAS Battery Point Australia

2. Climate Change Cluster University of Technology Sydney NSW Ultimo Australia

3. Research School of Earth Sciences Australian National University ACT Acton Australia

4. Department of Geology Colgate University NY Hamilton USA

5. Department of Geology University of Otago Dunedin New Zealand

6. Department of Earth and Ocean Dynamics University of Barcelona Barcelona Spain

7. School of Natural Sciences Macquarie University NSW Sydney Australia

8. Department of Stratigraphy and Paleontology University of Granada Granada Spain

9. Department of Geoscience/iCLIMATE Centre Aarhus University Aarhus C Denmark

10. Marine and Antarctic Geoscience, Geoscience Australia ACT Symonston Australia

Abstract

AbstractWith ongoing climate change, research into the biological changes occurring in particularly vulnerable ecosystems, such as Antarctica, is critical. The Totten Glacier region, Sabrina Coast, is currently experiencing some of the highest rates of thinning across all East Antarctica. An assessment of the microscopic organisms supporting the ecosystem of the marginal sea‐ice zone over the continental rise is important, yet there is a lack of knowledge about the diversity and distribution of these organisms throughout the water column, and their occurrence and/or preservation in the underlying sediments. Here, we provide a taxonomic overview of the modern and ancient marine bacterial and eukaryotic communities of the Totten Glacier region, using a combination of 16S and 18S rRNA amplicon sequencing (modern DNA) and shotgun metagenomics (sedimentary ancient DNA, sedaDNA). Our data show considerable differences between eukaryote and bacterial signals in the water column versus the sediments. Proteobacteria and diatoms dominate the bacterial and eukaryote composition in the upper water column, while diatoms, dinoflagellates, and haptophytes notably decrease in relative abundance with increasing water depth. Little diatom sedaDNA is preserved in the sediments, which are instead dominated by Proteobacteria and Retaria. We compare the diatom microfossil and sedaDNA record and link the weak preservation of diatom sedaDNA to DNA degradation while sinking through the water column to the seafloor. This study provides the first assessment of DNA transfer from ocean waters to sediments and an overview of the microscopic communities occurring in the climatically important Totten Glacier region.

Publisher

American Geophysical Union (AGU)

Subject

Paleontology,Atmospheric Science,Soil Science,Water Science and Technology,Ecology,Aquatic Science,Forestry

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