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. 2009 Aug 11;106(32):13399-403.
doi: 10.1073/pnas.0906802106. Epub 2009 Aug 3.

Climate directly influences Eocene mammal faunal dynamics in North America

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Climate directly influences Eocene mammal faunal dynamics in North America

Michael O Woodburne et al. Proc Natl Acad Sci U S A. .

Abstract

The modern effect of climate on plants and animals is well documented. Some have cautioned against assigning climate a direct role in Cenozoic land mammal faunal changes. We illustrate 3 episodes of significant mammalian reorganization in the Eocene of North America that are considered direct responses to dramatic climatic events. The first episode occurred during the Paleocene-Eocene Thermal Maximum (PETM), beginning the Eocene (55.8 Ma), and earliest Wasatchian North American Land Mammal Age (NALMA). The PETM documents a short (<170 k.y.) global temperature increase of approximately 5 degrees C and a substantial increase in first appearances of mammals traced to climate-induced immigration. A 4-m.y. period of climatic and evolutionary stasis then ensued. The second climate episode, the late early Eocene Climatic Optimum (EECO, 53-50 Ma), is marked by a temperature increase to the highest prolonged Cenozoic ocean temperature and a similarly distinctive continental interior mean annual temperature (MAT) of 23 degrees C. This MAT increase [and of mean annual precipitation (MAP) to 150 cm/y) promoted a major increase in floral diversity and habitat complexity under temporally unique, moist, paratropical conditions. Subsequent climatic deterioration in a third interval, from 50 to 47 Ma, resulted in major faunal diversity loss at both continental and local scales. In this Bridgerian Crash, relative abundance shifted from very diverse, evenly represented, communities to those dominated by the condylarth Hyopsodus. Rather than being "optimum," the EECO began the greatest episode of faunal turnover of the first 15 m.y. of the Cenozoic.

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Conflict of interest statement

The authors declare no conflict of interest.

Figures

Fig. 1.
Fig. 1.
Summary of temperature, rainfall, and mammalian diversity for the Western Interior of North America. Sea surface temperatures rise gradually from the Late Cretaceous into the early Eocene and then decline toward the late Eocene. The megafloral record responds in a generally similar way at least from the late Paleocene to the late Eocene, with a strong transient excursion at the PETM and a similarly warm interval during the EECO from ≈53 to 50 Ma. During the EECO, mean annual rainfall gradually decreased from ≈150 cm/y to 100 cm/y. From ≈50 Ma, both MAT and MAP, as well as tropicality, decrease sharply, to cooler, drier, and more open conditions. The mammalian diversity pattern generally reflects the MAT record, except that the PETM spike promoted immigration rather than in situ diversification in contrast to the opposite response during the EECO. Sources are cited in the figure.
Fig. 2.
Fig. 2.
Portrayal of FADs and LADs for North American late Paleocene and early Eocene mammals, based on percentage relative to total number of taxa in each biochron. Positions of PETM, EECO, and mammal biochrons, are indicated. Selected figures for MAT and general climatic conditions follow Fig. 1 and the text. The black bar indicates the percentage of immigrants for each biochron.
Fig. 3.
Fig. 3.
Rarefaction analysis of species diversity in Eocene and early Oligocene intervals in North America. The number of specimens (x axis) is compared with the number of species in each interval (y axis). Early Wasatchian (Wa-1–5, squares), latest Wasatchian and earliest Bridgerian (Wa-7–Br-1a, circles), medial Bridgerian (Br-2–gray polygons), Uintan and Duchesnean (Ui-2–Du, diamonds), and Chadronian and Orellan (Ch–Or, triangles). Specimen counts are based on individual fossiliferous horizons and are not generalized from stratigraphic intervals. Note the high levels of species diversity during the early part of the EECO that dramatically drops during the medial Bridgerian after the optimum. The figure suggests that the alpha species diversity for Wa-7–Br-1a is >1.5 times greater than during Br-2, indicating a drop in alpha diversity after the early EECO that is reflective of high levels of both point diversity and continental diversity during that time. Data were derived from Denver Museum of Natural Science collections for Br-2 and from Stucky (25) for the other intervals.

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