Award Abstract # 2049307
Collaborative Research: Sources and transformations of export production: A novel 50-year record of pelagic-benthic coupling from coral and plankton bioarchives

NSF Org: OCE
Division Of Ocean Sciences
Recipient: UNIVERSITY OF RHODE ISLAND
Initial Amendment Date: January 25, 2021
Latest Amendment Date: May 20, 2021
Award Number: 2049307
Award Instrument: Standard Grant
Program Manager: Jayne Gardiner
jgardine@nsf.gov
 (703)292-4828
OCE
 Division Of Ocean Sciences
GEO
 Directorate for Geosciences
Start Date: March 1, 2021
End Date: February 28, 2026 (Estimated)
Total Intended Award Amount: $739,133.00
Total Awarded Amount to Date: $739,133.00
Funds Obligated to Date: FY 2021 = $739,133.00
History of Investigator:
  • Kelton McMahon (Principal Investigator)
    kelton_mcmahon@uri.edu
  • Brennan Phillips (Co-Principal Investigator)
  • Jason Jaacks (Co-Principal Investigator)
Recipient Sponsored Research Office: University of Rhode Island
75 LOWER COLLEGE RD RM 103
KINGSTON
RI  US  02881-1974
(401)874-2635
Sponsor Congressional District: 02
Primary Place of Performance: University of Rhode Island
70 Lower College Road
KINGSTON
RI  US  02881-1967
Primary Place of Performance
Congressional District:
02
Unique Entity Identifier (UEI): CJDNG9D14MW7
Parent UEI: NSA8T7PLC9K3
NSF Program(s): BIOLOGICAL OCEANOGRAPHY
Primary Program Source: 01002122DB NSF RESEARCH & RELATED ACTIVIT
Program Reference Code(s): 1389, 8214, 8556, 9150
Program Element Code(s): 165000
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.050

ABSTRACT

Changes in ocean life, the environment, and the climate can influence the timing and composition of biological material that sinks to the sea floor. As this material sinks it is consumed by bottom-dwelling organisms such as deep-sea corals. Similar to tree rings, corals preserve a history of growth embedded in their skeletons, which can be analyzed using a new technique called microgeochemistry. This project is compiling a historic dataset from deep-sea corals spanning 50 years in the Gulf of Maine to understand how biological material sinking to the bottom has changed with time. Results from the coral analysis are being compared with archival samples of small planktonic crustaceans, copepods, to better understand the connection between productivity in the surface waters and the geochemical record in the coral tissue. A complementary modeling approach is identifying environmental and climatic drivers of decadal-scale oceanographic change with the sources and transformations of organic matter that connect the surface and the deep ocean. This cross-disciplinary project is unifying transformational research with broader impacts focused on science education and outreach that broaden the understanding of the links between climate, oceanography, and marine ecosystem response using a 50-year historical context. Two open access, media-enhanced, and National curriculum standards-aligned educational lessons plans are being developed through partnerships with a science documentary filmmaker, K-12 teachers from RI and ME, and the PBS LearningMedia Program. The topics of these lesson plans are: 1) Deep-sea exploration: A window into the past and future, and 2) Changing food webs on a changing planet. The project?s educational goals include training of three graduate students, career development of five early career researchers, and research experiences for undergraduates from underrepresented groups in STEM. The multi-faceted research and education effort is addressing a question described as highest priority in the Ocean Sciences by the National Research Council: How are ocean biogeochemical and physical processes linked to today?s climate variability and its variability?

Pelagic-benthic coupling regulates ocean production and food webs dynamics, biogeochemical cycling, and climate feedback mechanisms through the export of surface production to the ocean interior. Yet access to long-term data sets of export production are scarce and urgently needed to test assumptions about 1) the sources and transformations of organic matter through different food web pathways, and 2) the variability of these processes across climatic, oceanographic, and ecological changes through time. The proposed work is testing key hypotheses about bottom-up mechanisms that link decadal-scale oceanographic changes in hydrography and biogeochemical cycling with phytoplankton community composition, zooplankton abundance and trophic dynamics, and the resulting composition of export production. Complementary approaches are generating multiple and independent 50+ year, annually resolved time series of phytoplankton community composition, zooplankton trophic dynamics, and export composition. Coral tissue and archived zooplankton samples are being analyzed using pioneering molecular geochemistry approaches to assess changes in diet related variation in primary production. Deep-sea corals are being collected using a remotely operated vehicle (ROV), and zooplankton are available through archival samples from a Gulf of Maine long-term monitoring program managed by NOAA. The stable isotope data are being integrated with additional data from existing long-standing ocean monitoring programs and incorporated into a unifying modeling approach to identify unique ecosystem states and their environmental drivers. The project is focused on Jordan Basin in the Gulf of Maine, which has a long history of oceanographic study and is experiencing significant changes due to climate warming, making it an ideal natural laboratory for testing hypotheses on drivers of change in the composition of exported organic matter, and the relative importance of primary (e.g., phyto-detritus) vs. secondary production (e.g., copepod fecal pellets), and large vs. small pelagic plankton dynamics.

This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

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Agvent, Lindsay and Truesdale, Corinne and Piccone, Sofia and McMahon, Kelton W "Testing the Ontogenetic Migration Hypothesis in the emerging Rhode Island Jonah crab (Cancer borealis) fishery using stable isotope analysis" Ocean Sciences Meeting , 2024 Citation Details
Ferraro, Roman and Moore, Rhiannon and Agvent, Lindsay and Nowakowski, Catherine and McMahon, Kelton W "Using Isoscapes to Track Seasonal Shifts in Biogeochemical Cycling in the Northwest Atlantic Ocean" Ocean Sciences Meeting , 2024 Citation Details
Nowkowski, Catherine and Stamieszkin, Karen and Sherwood, Owen and McMahon, Kelton W "Multidecadal molecular isotope records of pelagic plankton bioarchives and deep-sea corals indicated strong pelagic-benthic coupling through microbial pathways in the Gulf of Maine" Ocean Sciences Meeting , 2024 Citation Details
Ramirez, Matthew_D and Besser, Alexi_C and Newsome, Seth_D and McMahon, Kelton_W "Metaanalysis of primary producer amino acid 15 N values and their influence on trophic position estimation" Methods in Ecology and Evolution , v.12 , 2021 https://doi.org/10.1111/2041-210X.13678 Citation Details
Robinson, Rebecca S. and Smart, Sandi M. and Cybulski, Jonathan D. and McMahon, Kelton W. and Marcks, Basia and Nowakowski, Catherine "Insights from Fossil-Bound Nitrogen Isotopes in Diatoms, Foraminifera, and Corals" Annual Review of Marine Science , v.15 , 2023 https://doi.org/10.1146/annurev-marine-032122-104001 Citation Details
Stahl, Angela R. and Rynearson, Tatiana A. and McMahon, Kelton W. "Amino acid carbon isotope fingerprints are unique among eukaryotic microalgal taxonomic groups" Limnology and Oceanography , v.68 , 2023 https://doi.org/10.1002/lno.12350 Citation Details
#Willis, Ciara and Llopiz, Joel and McMahon, Kelton W and Houghton, Leah and Hare Jon and McCarthy, Matthew D and Thorrold, Simon R "Decadal-scale changes in the Georges Bank ecosystem: evidence from bulk and compound-specific stable isotope analyses of fish scales" Ocean Sciences Meeting , 2024 Citation Details

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