0000000000943635

AUTHOR

Robert A. Eagle

0000-0003-0304-6111

showing 3 related works from this author

Cenozoic megatooth sharks occupied extremely high trophic positions.

2022

Trophic position is a fundamental characteristic of animals, yet it is unknown in many extinct species. In this study, we ground-truth the 15N/14N ratio of enameloid-bound organic matter (δ15NEB) as a trophic level proxy by comparison to dentin collagen δ15N and apply this method to the fossil record to reconstruct the trophic level of the megatooth sharks (genus Otodus). These sharks evolved in the Cenozoic, culminating in Otodus megalodon, a shark with a maximum body size of more than 15 m, which went extinct 3.5 million years ago. Very high δ15NEB values (22.9 ± 4.4‰) of O. megalodon from the Miocene and Pliocene show that it occupied a higher trophic level than is known for any marine s…

Multidisciplinary3103 Ecology37 Earth Sciences31 Biological Sciences
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Trophic position of Otodus megalodon and great white sharks through time revealed by zinc isotopes

2022

AbstractDiet is a crucial trait of an animal’s lifestyle and ecology. The trophic level of an organism indicates its functional position within an ecosystem and holds significance for its ecology and evolution. Here, we demonstrate the use of zinc isotopes (δ66Zn) to geochemically assess the trophic level in diverse extant and extinct sharks, including the Neogene megatooth shark (Otodus megalodon) and the great white shark (Carcharodon carcharias). We reveal that dietary δ66Zn signatures are preserved in fossil shark tooth enameloid over deep geologic time and are robust recorders of each species’ trophic level. We observe significant δ66Zn differences among the Otodus and Carcharodon popu…

MultidisciplinaryEcology[SDV]Life Sciences [q-bio]SharksGeneral Physics and AstronomyAnimalsNutritional Statuschemical and pharmacologic phenomenaZinc IsotopesGeneral Chemistryhuman activitiesGeneral Biochemistry Genetics and Molecular BiologyEcosystemNature Communications
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Isotopic ordering in eggshells reflects body temperatures and suggests differing thermophysiology in two Cretaceous dinosaurs

2015

International audience; Our understanding of the evolutionary transitions leading to the modern endothermic state of birds and mammals is incomplete, partly because tools available to study the thermo-physiology of extinct vertebrates are limited. Here we show that clumped isotope analysis of eggshells can be used to determine body temperatures of females during periods of ovulation. Late Cretaceous titanosaurid eggshells yield temperatures similar to large modern endo-therms. In contrast, oviraptorid eggshells yield temperatures lower than most modern endotherms but B6 °C higher than co-occurring abiogenic carbonates, implying that this taxon did not have thermoregulation comparable to mod…

OvulationRange (biology)General Physics and AstronomyBiologyPHOSPHORIC-ACIDGeneral Biochemistry Genetics and Molecular BiologyOXYGENBody TemperatureCalcium CarbonateDinosaursCALCITEIsotopes[SDU.STU.GC]Sciences of the Universe [physics]/Earth Sciences/GeochemistryAnimalsCARBONATEEggshellCLUMPED ISOTOPEOvumIsotope analysisENDOTHERMYMultidisciplinaryBIRDSFossilsEcologyFRACTIONATIONACLGeneral ChemistryThermoregulationCretaceousEVOLUTIONAbiogenic petroleum originTaxonEctothermMAMMALSFemale[SDE.BE]Environmental Sciences/Biodiversity and Ecology
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