The geologic history of marine dissolved organic carbon from iron oxides.

Galili, Nir; Bernasconi, Stefano M; Nissan, Alon; Alcolombri, Uria; Aquila, Giorgia; Di Bella, Marcella; Blattmann, Thomas M; Haghipour, Negar et al. · Nature · 2025

basic_science · Level V

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Abstract

Dissolved organic carbon (DOC) is the largest reduced carbon reservoir in modern oceans<sup>1,2</sup>. Its dynamics regulate marine communities and atmospheric CO<sub>2</sub> levels<sup>3,4</sup>, whereas <sup>13</sup>C compositions track ecosystem structure and autotrophic metabolism<sup>5</sup>. However, the geologic history of marine DOC remains largely unconstrained<sup>6,7</sup>, limiting our ability to mechanistically reconstruct coupled ecological and biogeochemical evolution. Here we develop and validate a direct proxy for past DOC signatures using co-precipitated organic carbon in iron ooids. We apply this to 26 marine iron ooid-containing formations deposited over the past 1,650 million years to generate a data-based reconstruction of marine DOC signals since the Palaeoproterozoic. Our predicted DOC concentrations were near modern levels in the Palaeoproterozoic, then decreased by 90-99% in the Neoproterozoic before sharply rising in the Cambrian. We interpret these dynamics to reflect three distinct states. The occurrence of mostly small, single-celled organisms combined with severely hypoxic deep oceans, followed by larger, more complex organisms and little change in ocean oxygenation and finally continued organism growth and a transition to fully oxygenated oceans<sup>8,9</sup>. Furthermore, modern DOC is <sup>13</sup>C-enriched relative to the Proterozoic, possibly because of changing autotrophic carbon-isotope fractionation driven by biological innovation. Our findings reflect connections between the carbon cycle, ocean oxygenation and the evolution of complex life.

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