Ecological interactions in dinosaur communities: influences of small offspring and complex ontogenetic life histories.

Because egg-laying meant that even the largest dinosaurs gave birth to very small offspring, they had to pass through multiple ontogenetic life stages to adulthood. Dinosaurs' successors as the dominant terrestrial vertebrate life form, the mammals, give birth to live young, and have much large...

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Main Authors: Daryl Codron, Chris Carbone, Marcus Clauss
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3812983?pdf=render
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spelling doaj-a441910908a645dc8014df8b66f966d32020-11-24T22:04:46ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-01810e7711010.1371/journal.pone.0077110Ecological interactions in dinosaur communities: influences of small offspring and complex ontogenetic life histories.Daryl CodronChris CarboneMarcus ClaussBecause egg-laying meant that even the largest dinosaurs gave birth to very small offspring, they had to pass through multiple ontogenetic life stages to adulthood. Dinosaurs' successors as the dominant terrestrial vertebrate life form, the mammals, give birth to live young, and have much larger offspring and less complex ontogenetic histories. The larger number of juveniles in dinosaur as compared to mammal ecosystems represents both a greater diversity of food available to predators, and competitors for similar-sized individuals of sympatric species. Models of population abundances across different-sized species of dinosaurs and mammals, based on simulated ecological life tables, are employed to investigate how differences in predation and competition pressure influenced dinosaur communities. Higher small- to medium-sized prey availability leads to a normal body mass-species richness (M-S) distribution of carnivorous dinosaurs (as found in the theropod fossil record), in contrast to the right-skewed M-S distribution of carnivorous mammals (as found living members of the order Carnivora). Higher levels of interspecific competition leads to a left-skewed M-S distribution in herbivorous dinosaurs (as found in sauropods and ornithopods), in contrast to the normal M-S distribution of large herbivorous mammals. Thus, our models suggest that differences in reproductive strategy, and consequently ontogeny, explain observed differences in community structure between dinosaur and mammal faunas. Models also show that the largest dinosaurian predators could have subsisted on similar-sized prey by including younger life stages of the largest herbivore species, but that large predators likely avoided prey much smaller than themselves because, despite predicted higher abundances of smaller than larger-bodied prey, contributions of small prey to biomass intake would be insufficient to satisfy meat requirements. A lack of large carnivores feeding on small prey exists in mammals larger than 21.5 kg, and it seems a similar minimum prey-size threshold could have affected dinosaurs as well.http://europepmc.org/articles/PMC3812983?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Daryl Codron
Chris Carbone
Marcus Clauss
spellingShingle Daryl Codron
Chris Carbone
Marcus Clauss
Ecological interactions in dinosaur communities: influences of small offspring and complex ontogenetic life histories.
PLoS ONE
author_facet Daryl Codron
Chris Carbone
Marcus Clauss
author_sort Daryl Codron
title Ecological interactions in dinosaur communities: influences of small offspring and complex ontogenetic life histories.
title_short Ecological interactions in dinosaur communities: influences of small offspring and complex ontogenetic life histories.
title_full Ecological interactions in dinosaur communities: influences of small offspring and complex ontogenetic life histories.
title_fullStr Ecological interactions in dinosaur communities: influences of small offspring and complex ontogenetic life histories.
title_full_unstemmed Ecological interactions in dinosaur communities: influences of small offspring and complex ontogenetic life histories.
title_sort ecological interactions in dinosaur communities: influences of small offspring and complex ontogenetic life histories.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description Because egg-laying meant that even the largest dinosaurs gave birth to very small offspring, they had to pass through multiple ontogenetic life stages to adulthood. Dinosaurs' successors as the dominant terrestrial vertebrate life form, the mammals, give birth to live young, and have much larger offspring and less complex ontogenetic histories. The larger number of juveniles in dinosaur as compared to mammal ecosystems represents both a greater diversity of food available to predators, and competitors for similar-sized individuals of sympatric species. Models of population abundances across different-sized species of dinosaurs and mammals, based on simulated ecological life tables, are employed to investigate how differences in predation and competition pressure influenced dinosaur communities. Higher small- to medium-sized prey availability leads to a normal body mass-species richness (M-S) distribution of carnivorous dinosaurs (as found in the theropod fossil record), in contrast to the right-skewed M-S distribution of carnivorous mammals (as found living members of the order Carnivora). Higher levels of interspecific competition leads to a left-skewed M-S distribution in herbivorous dinosaurs (as found in sauropods and ornithopods), in contrast to the normal M-S distribution of large herbivorous mammals. Thus, our models suggest that differences in reproductive strategy, and consequently ontogeny, explain observed differences in community structure between dinosaur and mammal faunas. Models also show that the largest dinosaurian predators could have subsisted on similar-sized prey by including younger life stages of the largest herbivore species, but that large predators likely avoided prey much smaller than themselves because, despite predicted higher abundances of smaller than larger-bodied prey, contributions of small prey to biomass intake would be insufficient to satisfy meat requirements. A lack of large carnivores feeding on small prey exists in mammals larger than 21.5 kg, and it seems a similar minimum prey-size threshold could have affected dinosaurs as well.
url http://europepmc.org/articles/PMC3812983?pdf=render
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