Geologic controls on phytoplankton elemental composition.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 34937697.
- Also identified by DOI 10.1073/pnas.2113263118 and PMC identifier 8740700.
- Licence recorded as CC BY-NC-ND.
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Abstract
Planktonic organic matter forms the base of the marine food web, and its nutrient content (C:N:P<sub>org</sub>) governs material and energy fluxes in the ocean. Over Earth history, C:N:P<sub>org</sub> had a crucial role in marine metazoan evolution and global biogeochemical dynamics, but the geologic history of C:N:P<sub>org</sub> is unknown, and it is often regarded constant at the "Redfield" ratio of ∼106:16:1. We calculated C:N:P<sub>org</sub> through Phanerozoic time by including nutrient- and temperature-dependent C:N:P<sub>org</sub> parameterizations in a model of the long-timescale biogeochemical cycles. We infer a decrease from high Paleozoic C:P<sub>org</sub> and N:P<sub>org</sub> to present-day ratios, which stems from a decrease in the global average temperature and an increase in seawater phosphate availability. These changes in the phytoplankton's growth environment were driven by various Phanerozoic events: specifically, the middle to late Paleozoic expansion of land plants and the Triassic breakup of the supercontinent Pangaea, which increased continental weatherability and the fluxes of weathering-derived phosphate to the oceans. The resulting increase in the nutrient content of planktonic organic matter likely impacted the evolution of marine fauna and global biogeochemistry.
Medical subject headings
- Carbon
- Geologic Sediments
- Nitrogen
- Phosphorus
- Phytoplankton