Mid-Devonian ocean oxygenation enabled the expansion of animals into deeper-water habitats

K Kunmanee Bubphamanee (Department of Earth and Space Sciences, University of Washington) M Michael A. Kipp (Virtual Planetary Laboratory, NASA Nexus for Exoplanet Systems Science) J Jana Meixnerová (Department of Earth and Space Sciences, University of Washington) E Eva E. Stüeken (School of Earth and Environmental Sciences, University of St. Andrews) L Linda C. Ivany (Department of Earth and Environmental Sciences, Syracuse University) A Alexander J. Bartholomew (Geology Department, State University of New York) T Thomas J. Algeo (Department of Geosciences, University of Cincinnati) J Jochen J. Brocks (Research School of Earth Sciences, Australian National University) T Tais W. Dahl (Department of Geosciences and Natural Resource Management, University of Copenhagen, Øster Voldgade 10) J Jordan Kinsley (Research School of Earth Sciences, Australian National University) F François L. H. Tissot (The Isotoparium, Division of Geological and Planetary Sciences, California Institute of Technology) R Roger Buick (Department of Earth and Space Sciences, University of Washington)

Abstract

The oxygenation history of Earth’s surface environments has had a profound influence on the ecology and evolution of metazoan life. It was traditionally thought that the Neoproterozoic Oxygenation Event enabled the origin of animals in marine environments, followed by their persistence in aerobic marine habitats ever since. However, recent studies of redox proxies (e.g., Fe, Mo, Ce, I) have suggested that low dissolved oxygen levels persisted in the deep ocean until the Late Devonian, when the first heavily wooded ligniophyte forests raised atmospheric O 2 to modern levels. Here, we present a Paleozoic redox proxy record based on selenium enrichments and isotope ratios in fine-grained siliciclastic sediments. Our data reveal transient oxygenation of bottom waters around the Ediacaran–Cambrian boundary, followed by predominantly anoxic deep-water conditions through the Early Devonian (419 to 393 Ma). In the Middle Devonian (393 to 382 Ma), our data document the onset of permanent deep-ocean oxygenation, coincident with the spread of woody biomass across terrestrial landscapes. This episode is concurrent with the ecological occupation and evolutionary radiation of large active invertebrate and vertebrate organisms in deeper oceanic infaunal and epifaunal habitats, suggesting that the burial of recalcitrant wood from the first forests sequestered organic carbon, increased deep marine oxygen levels, and was ultimately responsible for the “mid-Paleozoic marine revolution.”

Article Details

Volume / Issue Vol. 122, Issue 35
Published September 02, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

K

Kunmanee Bubphamanee

Department of Earth and Space Sciences, University of Washington

M

Michael A. Kipp

Virtual Planetary Laboratory, NASA Nexus for Exoplanet Systems Science

J

Jana Meixnerová

Department of Earth and Space Sciences, University of Washington

E

Eva E. Stüeken

School of Earth and Environmental Sciences, University of St. Andrews

L

Linda C. Ivany

Department of Earth and Environmental Sciences, Syracuse University

A

Alexander J. Bartholomew

Geology Department, State University of New York

T

Thomas J. Algeo

Department of Geosciences, University of Cincinnati

J

Jochen J. Brocks

Research School of Earth Sciences, Australian National University

T

Tais W. Dahl

Department of Geosciences and Natural Resource Management, University of Copenhagen, Øster Voldgade 10

J

Jordan Kinsley

Research School of Earth Sciences, Australian National University

F

François L. H. Tissot

The Isotoparium, Division of Geological and Planetary Sciences, California Institute of Technology

R

Roger Buick

Department of Earth and Space Sciences, University of Washington