4.7 Article

Seasonal variability in Arctic temperatures during early Eocene time

Journal

EARTH AND PLANETARY SCIENCE LETTERS
Volume 296, Issue 3-4, Pages 481-486

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.epsl.2010.06.005

Keywords

Eocene Arctic paleoclimate; seasonality; oxygen isotopes; Coryphodon; fossil turtles

Funding

  1. NSF [ARC 0454906]
  2. Royal Tyrrell Museum Cooperating Society
  3. NSERC [A9180, 327448]
  4. Division Of Polar Programs
  5. Directorate For Geosciences [0804627] Funding Source: National Science Foundation

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As a deep time analog for today's rapidly warming Arctic region, early Eocene (52-53 Ma) rock on Ellesmere Island in Canada's High Arctic (similar to 79 degrees N.) preserves evidence of lush swamp forests inhabited by turtles, alligators, primates, tapirs, and hippo-like Coryphodon. Although the rich flora and fauna of the early Eocene Arctic imply warmer, wetter conditions than at present, the quantification of Eocene Arctic climate has been more elusive. By analyzing oxygen isotope ratios of biogenic phosphate from mammal, fish, and turtle fossils from a single locality on central Ellesmere Island, we infer early Eocene Arctic temperatures, including mean annual temperature (MAT) of similar to 8 degrees C, mean annual range in temperature of similar to 16.5-19 degrees C, warm month mean temperature of 19-20 degrees C, and cold month mean temperature of 0-3.5 degrees C. Our seasonal range in temperature is similar to the range in estimated MAT obtained using different proxies. In particular, relatively high estimates of early Eocene Arctic MAT and SST by others that are based upon the distribution of branched glycerol dialkyl glycerol tetraether (GDGT) membrane lipids in terrestrial soil bacteria and isoprenoid tetraether lipids in marine Crenarchaeota fall close to our warm month temperature, suggesting a bias towards summer values. From a paleontologic perspective, our temperature estimates verify that alligators and tortoises, by way of nearest living relative-based climatic inference, are viable paleoclimate proxies for mild, above-freezing year-round temperatures. Although for both of these reptilian groups, past temperature tolerances probably were greater than in living descendants. (C) 2010 Elsevier B.V. All rights reserved.

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