Reversed marine phosphorus gradient in the Ediacaran Ocean

The Ediacaran Period (635–539 Ma) witnessed the emergence of early animals, rapid oceanic oxygenation, and rising oceanic P availability. However, the relationships among these developments remain intensely debated. Here, we present high-resolution carbonate-associated phosphate (CAP) data from seven Ediacaran sections spanning diverse depositional environments across South China. Contrary to the modern ocean, our measurements reveal an inverted phosphorus (P) gradient, with lower P availability at depth. By integrating these data with a quantitative biogeochemical model, we show that increasing shallow-water P inputs drove enhanced productivity and bottom-water anoxia on continental shelves, while P-starved distal oceans became progressively oxygenated from the top downward, providing an oxygenated niche—a deep-ocean cradle—for early metazoan evolution. Our study establishes a conceptual framework linking nutrient dynamics, marine oxygenation, and evolutionary innovation in Earth’s early history. Carbonate associated phosphate indicates that Ediacaran oceans had more P in shallow waters but less in the deep sea, opposite to modern. A distal P shortage may have aided deep-water oxygenation and early animals.

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Publication Details

Journal
Nature Communications
Published
2026-08-27
DOI
https://doi.org/10.1038/s41467-026-77093-z
Primary Topic
Paleontology and Stratigraphy of Fossils
Type
article
Field-Weighted Citation Impact
0.00

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article

Reversed marine phosphorus gradient in the Ediacaran Ocean

Mingcai Hou, Benjamin Mills, Matthew S. Dodd, Meng Cheng et al.
Nature Communications
Paleontology and Stratigraphy of Fossils
article

Reversed marine phosphorus gradient in the Ediacaran Ocean

Mingcai Hou, Benjamin Mills, Matthew S. Dodd, Meng Cheng, Jie Fang, Chao Li, Lei Zheng, Haodong Gu, Aleksey Y. Sadekov, Thomas J. Algeo, Zihu Zhang, Jun Hu
article en

Abstract

The Ediacaran Period (635–539 Ma) witnessed the emergence of early animals, rapid oceanic oxygenation, and rising oceanic P availability. However, the relationships among these developments remain intensely debated. Here, we present high-resolution carbonate-associated phosphate (CAP) data from seven Ediacaran sections spanning diverse depositional environments across South China. Contrary to the modern ocean, our measurements reveal an inverted phosphorus (P) gradient, with lower P availability at depth. By integrating these data with a quantitative biogeochemical model, we show that increasing shallow-water P inputs drove enhanced productivity and bottom-water anoxia on continental shelves, while P-starved distal oceans became progressively oxygenated from the top downward, providing an oxygenated niche—a deep-ocean cradle—for early metazoan evolution. Our study establishes a conceptual framework linking nutrient dynamics, marine oxygenation, and evolutionary innovation in Earth’s early history. Carbonate associated phosphate indicates that Ediacaran oceans had more P in shallow waters but less in the deep sea, opposite to modern. A distal P shortage may have aided deep-water oxygenation and early animals.

Nature Communications
University of Leeds (GB), The University of Western Australia (AU), China University of Geosciences (CN), Chengdu University of Technology (CN), State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation (CN), University of Cincinnati (US)
National Natural Science Foundation of China, Bundesministerium für Bildung und Forschung, China Postdoctoral Science Foundation, National Natural Science Foundation of China-Yunnan Joint Fund
Life below water
Openalex Percentile: Top 6%
Paleontology and Stratigraphy of Fossils
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