Seawater magnesium (Mg) and calcium (Ca) have undergone secular fluctuations throughout the Phanerozoic, controlling whether the dominant calcium carbonate precipitant is calcite or aragonite + high-Mg calcite. Although these oscillations in seawater Mg/Ca ratios have been implicated as an important control on Phanerozoic diversification of calcifying marine organisms, determining the degree to which Mg/Ca ratios affected different clades requires integration of experimental data with historical patterns of biodiversity from the fossil record. We explore short-term and long-term responses of echinoderms to shifting calcite-aragonite seas by combining experimental and deep-time biodiversity investigations. While experimental results support a strong relationship between Mg/Ca ratios and short-term echinoderm regeneration rates, patterns of Phanerozoic echinoderm diversification dynamics show no correspondence with Mg/Ca ratios or calcite-aragonite sea transitions. This decoupling between short- and long-term responses of echinoderms to seawater Mg/Ca ratios suggests echinoderms were relatively unaffected by seawater chemistry throughout their evolutionary history, possibly due to their ability to alter skeletal Mg fractionation and/or adapt to gradual shifts in seawater chemistry. Notably, our results indicate a strict uniformitarian extrapolation of experimental results over geological time scales may not be appropriate for many calcifying marine invertebrates. Instead, the effect of seawater Mg/Ca ratios should be evaluated for individual clades using both experimental and deep-time biodiversity data in a time series.
Research Article|
September 12, 2023
Calcite-aragonite seas as a driver of echinoderm evolution? Experimental insight and deep-time decoupling
Selina R. Cole;
Selina R. Cole
1
Sam Noble Museum, University of Oklahoma, 2401 Chautauqua Avenue, Norman, Oklahoma 73072, USA2
School of Geosciences, University of Oklahoma, 100 E Boyd Street, Norman, Oklahoma 73019, USA
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David F. Wright;
David F. Wright
1
Sam Noble Museum, University of Oklahoma, 2401 Chautauqua Avenue, Norman, Oklahoma 73072, USA2
School of Geosciences, University of Oklahoma, 100 E Boyd Street, Norman, Oklahoma 73019, USA
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Jeffrey R. Thompson
Jeffrey R. Thompson
3
School of Biological Sciences, University of Southampton, University Road, Southampton SO17 1BJ, UK4
School of Ocean and Earth Science, University of Southampton, National Oceanography Centre, European Way, Southampton SO14 3ZH, UK
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Selina R. Cole
1
Sam Noble Museum, University of Oklahoma, 2401 Chautauqua Avenue, Norman, Oklahoma 73072, USA2
School of Geosciences, University of Oklahoma, 100 E Boyd Street, Norman, Oklahoma 73019, USA
David F. Wright
1
Sam Noble Museum, University of Oklahoma, 2401 Chautauqua Avenue, Norman, Oklahoma 73072, USA2
School of Geosciences, University of Oklahoma, 100 E Boyd Street, Norman, Oklahoma 73019, USA
Jeffrey R. Thompson
3
School of Biological Sciences, University of Southampton, University Road, Southampton SO17 1BJ, UK4
School of Ocean and Earth Science, University of Southampton, National Oceanography Centre, European Way, Southampton SO14 3ZH, UK
Publisher: Geological Society of America
Received:
06 Jun 2023
Revision Received:
25 Jul 2023
Accepted:
24 Aug 2023
First Online:
12 Sep 2023
Online ISSN: 1943-2682
Print ISSN: 0091-7613
© 2023 The Authors
Geology (2023)
Article history
Received:
06 Jun 2023
Revision Received:
25 Jul 2023
Accepted:
24 Aug 2023
First Online:
12 Sep 2023
Citation
Selina R. Cole, David F. Wright, Jeffrey R. Thompson; Calcite-aragonite seas as a driver of echinoderm evolution? Experimental insight and deep-time decoupling. Geology 2023; doi: https://doi.org/10.1130/G51444.1
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