4.4 Article

The impact of marine nutrient abundance on early eukaryotic ecosystems

Journal

GEOBIOLOGY
Volume 18, Issue 2, Pages 139-151

Publisher

WILEY
DOI: 10.1111/gbi.12384

Keywords

eukaryote evolution; nutrient cycles; oxygenation; Proterozoic

Funding

  1. NASA Astrobiology Institute
  2. NSF Earth-Life Transitions Program [1338299]
  3. Alfred P. Sloan Foundation
  4. Heising-Simons Foundation
  5. EU [ERC 2013-CoG-617313]
  6. Alternative Earths Team
  7. Directorate For Geosciences
  8. Division Of Earth Sciences [1338299] Funding Source: National Science Foundation

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The rise of eukaryotes to ecological prominence represents one of the most dramatic shifts in the history of Earth's biosphere. However, there is an enigmatic temporal lag between the emergence of eukaryotic organisms in the fossil record and their much later ecological expansion. In parallel, there is evidence for a secular increase in the availability of the key macronutrient phosphorus (P) in Earth's oceans. Here, we use an Earth system model equipped with a size-structured marine ecosystem to explore relationships between plankton size, trophic complexity, and the availability of marine nutrients. We find a strong dependence of planktonic ecosystem structure on ocean nutrient abundance, with a larger ocean nutrient inventory leading to greater overall biomass, broader size spectra, and increasing abundance of large Zooplankton. If existing estimates of Proterozoic marine nutrient levels are correct, our results suggest that increases in the ecological impact of eukaryotic algae and trophic complexity in eukaryotic ecosystems were directly linked to restructuring of the global P cycle associated with the protracted rise of surface oxygen levels. Our results thus suggest an indirect but potentially important mechanism by which ocean oxygenation may have acted to shape marine ecological function during late Proterozoic time.

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