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1.
Proc Natl Acad Sci U S A ; 119(25): e2118329119, 2022 06 21.
Artigo em Inglês | MEDLINE | ID: mdl-35696566

RESUMO

Under harsh Pleistocene climates, migration and other forms of seasonally patterned landscape use were likely critical for reproductive success of mastodons (Mammut americanum) and other megafauna. However, little is known about how their geographic ranges and mobility fluctuated seasonally or changed with sexual maturity. We used a spatially explicit movement model that coupled strontium and oxygen isotopes from two serially sampled intervals (5+ adolescent years and 3+ adult years) in a male mastodon tusk to test for changes in landscape use associated with maturation and reproductive phenology. The mastodon's early adolescent home range was geographically restricted, with no evidence of seasonal preferences. Following inferred separation from the matriarchal herd (starting age 12 y), the adolescent male's mobility increased as landscape use expanded away from his natal home range (likely central Indiana). As an adult, the mastodon's monthly movements increased further. Landscape use also became seasonally structured, with some areas, including northeast Indiana, used only during the inferred mastodon mating season (spring/summer). The mastodon died in this area (>150 km from his core, nonsummer range) after sustaining a craniofacial injury consistent with a fatal blow from a competing male's tusk during a battle over access to mates. Northeast Indiana was likely a preferred mating area for this individual and may have been regionally significant for late Pleistocene mastodons. Similarities between mammutids and elephantids in herd structure, tusk dimorphism, tusk function, and the geographic component of male maturation indicate that these traits were likely inherited from a common ancestor.


Assuntos
Extinção Biológica , Mastodontes , Comportamento Sexual Animal , Migração Animal , Animais , Dente Canino , Fósseis , Indiana , Masculino , Mastodontes/crescimento & desenvolvimento , Reprodução , Estações do Ano
2.
Nature ; 467(7318): 955-8, 2010 Oct 21.
Artigo em Inglês | MEDLINE | ID: mdl-20962843

RESUMO

Marine and continental records show an abrupt negative shift in carbon isotope values at ∼55.8 Myr ago. This carbon isotope excursion (CIE) is consistent with the release of a massive amount of isotopically light carbon into the atmosphere and was associated with a dramatic rise in global temperatures termed the Palaeocene-Eocene thermal maximum (PETM). Greenhouse gases released during the CIE, probably including methane, have often been considered the main cause of PETM warming. However, some evidence from the marine record suggests that warming directly preceded the CIE, raising the possibility that the CIE and PETM may have been linked to earlier warming with different origins. Yet pre-CIE warming is still uncertain. Disentangling the sequence of events before and during the CIE and PETM is important for understanding the causes of, and Earth system responses to, abrupt climate change. Here we show that continental warming of about 5 °C preceded the CIE in the Bighorn Basin, Wyoming. Our evidence, based on oxygen isotopes in mammal teeth (which reflect temperature-sensitive fractionation processes) and other proxies, reveals a marked temperature increase directly below the CIE, and again in the CIE. Pre-CIE warming is also supported by a negative amplification of δ(13)C values in soil carbonates below the CIE. Our results suggest that at least two sources of warming-the earlier of which is unlikely to have been methane-contributed to the PETM.


Assuntos
Aquecimento Global/estatística & dados numéricos , Temperatura , Animais , Organismos Aquáticos/química , Atmosfera/química , Isótopos de Carbono , Clima , Esmalte Dentário/química , Compostos Férricos/química , História Antiga , Umidade , Mamíferos , Metano/análise , Isótopos de Oxigênio , Solo/química , Dente/química , Wyoming
3.
Science ; 335(6071): 959-62, 2012 Feb 24.
Artigo em Inglês | MEDLINE | ID: mdl-22363006

RESUMO

Body size plays a critical role in mammalian ecology and physiology. Previous research has shown that many mammals became smaller during the Paleocene-Eocene Thermal Maximum (PETM), but the timing and magnitude of that change relative to climate change have been unclear. A high-resolution record of continental climate and equid body size change shows a directional size decrease of ~30% over the first ~130,000 years of the PETM, followed by a ~76% increase in the recovery phase of the PETM. These size changes are negatively correlated with temperature inferred from oxygen isotopes in mammal teeth and were probably driven by shifts in temperature and possibly high atmospheric CO(2) concentrations. These findings could be important for understanding mammalian evolutionary responses to future global warming.


Assuntos
Evolução Biológica , Mudança Climática , Equidae/anatomia & histologia , Fósseis , Cavalos/anatomia & histologia , Animais , Atmosfera , Tamanho Corporal , Dióxido de Carbono/análise , Aquecimento Global , Umidade , Isótopos de Oxigênio/análise , Temperatura , Wyoming
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