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High-elevation paleoenvironmental change during MIS 6–4 in the central Rockies of Colorado as determined from pollen analysis

Published online by Cambridge University Press:  20 January 2017

R. Scott Anderson*
Affiliation:
School of Earth Sciences and Environmental Sustainability, Northern Arizona University, Flagstaff, AZ 86011, USA Bilby Research Center, Northern Arizona University, Flagstaff, AZ 86011, USA
Gonzalo Jiménez-Moreno
Affiliation:
Departamento de Estratigrafía y Paleontología, Universidad de Granada, Fuente Nueva s/n, 18002 Granada, Spain
Thomas Ager
Affiliation:
US Geological Survey, Mail Stop 980, Box 25046, Denver Federal Center, Denver, CO 80225, USA
David F. Porinchu
Affiliation:
Department of Geography, University of Georgia, 210 Field Street, Room 204, Athens, GA 30602, USA
*
Corresponding author.E-mail address:[email protected] (R.S. Anderson).

Abstract

Paleoecological studies from Rocky Mountain (USA) high elevations encompassing the previous interglacial (MIS 5e) are rare. The ~10-m composite profile from the Ziegler Reservoir fossil site (2705 m asl) of central Colorado allows us to determine paleoenvironments from Marine Oxygen Isotope Stages (MIS) 6– 4 using pollen zones that are approximately equivalent to marine oxygen isotope stages. During Pollen Zone (PZ) 6 time, pollen assemblages dominated by Artemisia (sagebrush) suggest that alpine tundra or steppe occurred nearby. The transition to PZ 5e was characterized by a rapid increase in tree pollen, initially Picea (spruce) and Pinus (pine) but also Quercus (oak) and Pseudotsuga menziesii (Douglas-fir). Non-arboreal pollen (NAP) types increased during PZ 5d, while Abies (fir) and Juniperus (juniper) increased during PZ 5c. Pollen evidence suggests that temperatures during PZ 5b were as cold as during PZ 6, with the site again surrounded by alpine tundra. Picea dominated during PZ 5a before the onset of cooler conditions during PZ 4. The MIS 6–MIS 5e transition here was similar to the MIS 2–MIS 1 transition at other Rocky Mountain sites. However, the Ziegler Reservoir pollen record contains evidence suggesting unexpected climatic trends at this site, including a warmer-than-expected MIS 5d and cooler-than-expected MIS 5b.

Type
Articles
Copyright
University of Washington

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References

Adam, D.P., and West, J.G. Temperature and precipitation estimates through the last glacial cycle from Clear Lake, California, pollen data. Science 219, 4581 (1983). 168170.Google Scholar
Baker, R.G. Sangamonian (?) and Wisconsinan paleoenvironments in Yellowstone National Park. Geological Society of America Bulletin 97, (1986). 717736.Google Scholar
Baker, R.G., and Richmond, G.M. Geology, palynology and climatic significance of two pre-Pinedale lake sediment sequences in and near Yellowstone National Park. Quaternary Research 10, (1978). 226240.Google Scholar
Brown, P.M., Nash, S.E., and Kline, D. Identification and dendrochronology of wood found at the Ziegler Reservoir fossil site, Colorado, USA. Quaternary Research 82, (2014). 575579. (2014--in this volume) Google Scholar
Bryant, B., and Martin, P.L. The geologic story of the Aspen region. U.S. Geological Survey Bulletin 1603, (1988). 153.Google Scholar
CAPE Last Interglacial Project Members Last interglacial arctic warmth confirms polar amplification of climate change. Quaternary Science Reviews 25, (2006). 13831400.Google Scholar
Carrara, P.E., Mode, W.N., and Rubin, M. Deglaciation and postglacial timberline in the San Juan Mountains, Colorado. Quaternary Research 21, (1984). 4255.Google Scholar
Davis, O.K. Palynological evidence for vegetation cycles in a 1.5 million year pollen record from the Great Salt Lake, Utah, USA. Palaeogeography, Palaeoclimatology, Palaeoecology 138, (1998). 175185.Google Scholar
Davis, O.K., and Moutoux, T.E. Tertiary and Quaternary vegetation history of the Great Salt Lake, Utah, USA. Journal of Paleolimnology 19, (1998). 417427.Google Scholar
Elias, S.A. Environmental interpretation of fossil insect assemblages from MIS 5 at Ziegler Reservoir, Snowmass Village, Colorado. Quaternary Research 82, (2014). 592603. (in this volume) Google Scholar
Faegri, K., and Iversen, J. Textbook of Pollen Analysis. (1989). Wiley, New York.Google Scholar
Fall, P.L. Pollen accumulation in a montane region of Colorado, USA: a comparison of moss polsters, atmospheric traps and natural basins. Review of Palaeobotany and Palynology 72, (1992). 169197.Google Scholar
Fall, P.L. Timberline fluctuations and late Quaternary paleoclimates in the Southern Rocky Mountains, Colorado. Geological Society of America Bulletin 109, (1997). 13061320.Google Scholar
Fawcett, P.J., Werne, J.P., Anderson, R.S., Heikoop, J.M., Brown, E.T., Berke, M.A., Smith, S., Goff, F., Hurley, L., Cisneros-Dozal, L.M., Schouten, S., Sinninghe Damsté, J.S., Huang, Y., Toney, J., Fessenden, J., WoldeGabriel, G., Atudorei, V., Geissman, J.W., and Allen, C.D. Extended megadroughts in the southwestern United States during Pleistocene interglacials. Nature 470, (2011). 518521.Google Scholar
Fisher, D.C., Cherney, M.D., Newton, C., Graham, R.W., Rountrey, A.N., Calamari, Z.T., Stucky, R., Lucking, C., and Petrie, L. Taxonomic overview and tusk growth analyses of Ziegler Reservoir proboscideans. Quaternary Research 82, (2014). 518532. (in this volume) Google Scholar
Haskett, D.R., and Porinchu, D.F. A quantitative midge-based reconstruction of mean July air temperature from a high-elevation site in central Colorado, USA, for MIS 6 and 5. Quaternary Research 82, (2014). 580591. (in this volume) Google Scholar
Heusser, L.E. Pollen stratigraphy and paleoecologic interpretation of the 160-K.Y. record from Santa Barbara Basin, Hole 893A. Kennett, J.P., Baldauf, J.G., Lyle, M. Proceedings of the Ocean Drilling Program, Scientific Results vol. 146 (pt. 2), (1995). 265279.Google Scholar
Heusser, L.E. Direct correlation of millennial-scale changes in western North American vegetation and climate with changes in the California Current system over the past 60 kyr. Paleoceanography 13, (1998). 252262.Google Scholar
Heusser, L.E. Rapid oscillations in western North America vegetation and climate during oxygen isotope stage 5 inferred from pollen data from Santa Barbara Basin (Hole 893A). Palaeogeography, Palaeoclimatology, Palaeoecology 161, (2000). 407421.Google Scholar
Heusser, C.J., and Heusser, L.E. Long continental pollen sequence from Washington State (USA): correlation of upper levels with marine pollen-oxygen isotope stratigraphy through substage 5e. Palaeogeography, Palaeoclimatology, Palaeoecology 79, (1990). 6371.Google Scholar
Jiménez-Moreno, G., and Anderson, R.S. Pollen and macrofossil evidence of late Pleistocene and Holocene treeline fluctuations from an alpine lake in Colorado, USA. The Holocene 23, (2012). 6877.Google Scholar
Jiménez-Moreno, G., Anderson, R.S., and Fawcett, P.J. Orbital- and millennial-scale vegetation and climate changes of the past 225 ka from Bear Lake, Utah-Idaho (USA). Quaternary Science Reviews 26, (2007). 17131724.Google Scholar
Jiménez-Moreno, G., Fawcett, P.J., and Anderson, R.S. Millennial- and centennial-scale vegetation and climate changes during the late Pleistocene and Holocene from northern New Mexico (USA). Quaternary Science Reviews 27, (2008). 14421452.Google Scholar
Jiménez-Moreno, G., Anderson, R.S., Atudorei, V., and Toney, J.L. A high-resolution record of vegetation, climate, and fire regimes in the mixed conifer forest of northern Colorado (USA). Geological Society of America Bulletin 123, (2011). 240254.Google Scholar
Johnsen, S.J., Dahl-Jensen, D., Gundestrup, N., Steffensen, J.P., Clausen, H.B., Miller, H., Masson-Delmotte, V., Sveinbjönrsdottir, A.E., and White, J. Oxygen isotope and palaeotemperature records from six Greenland ice-core stations: Camp Century, Dye-3, GRIP, GISP2, Renland and NorthGRIP. Journal of Quaternary Science 16, (2001). 299307.Google Scholar
Johnson, K.R., Miller, I.M., and Pigati, J.S. Snowmastodon Project Science Team, 2014. The Snowmastodon Project. Quaternary Research 82, (2014). 473476. (in this volume) Google Scholar
Kukla, G.J., Bender, M.L., de Beaulieu, J.-L., Bond, G., Broecker, W.S., Cleveringa, P., Gavin, J.E., Herbert, T.D., Imbrie, J., Jouzel, J., Keigwin, L.D., Knudsen, K.-L., McManus, J.F., Merkt, J., Muhs, D.R., Müller, H., Poore, R.Z., Porter, S.C., Seret, G., Shackleton, N.J., Turner, C., Tzedakis, P.C., and Winograd, I.J. Last interglacial climates. Quaternary Research 58, (2002). 213.Google Scholar
Laskar, J., Robutel, P., Joutel, F., Gastineau, M., Correia, A.C.M., and Levrard, B. A long term numerical solution for the insolation quantities of the Earth. Astronomy and Astrophysics 428, (2004). 261285.Google Scholar
Langenheim, J.H. Vegetation and environmental patterns in the crested Butte Area, Gunnison County, Colorado. Ecological Monographs 32, 3 (1962). 249285.Google Scholar
Legg, T.E., and Baker, R.G. Palynology of Pinedale sediments, Devlins Park, Boulder County, Colorado. Arctic and Alpine Research 12, (1980). 319333.Google Scholar
Lisiecki, L.E., and Raymo, M.E. A Pliocene–Pleistocene stack of 57 globally distributed benthic δ18O records. Paleoceanography 20, (2005). PA1003 Google Scholar
Litwin, R.J., Adam, D.P., Frederiksen, N.O., and Woolfenden, W.B. An 800,000-year pollen record from Owens Lake, California; preliminary analyses. GSA Special Papers 317, (1997). 127142.Google Scholar
Mahan, S.A., Gray, H.J., Pigati, J.S., Wilson, J., Lifton, N.A., Paces, J.B., and Blaauw, M. A geochronologic framework for the Ziegler Reservoir fossil site, Snowmass Village, Colorado. Quaternary Research 82, (2014). 490503. (in this volume) Google Scholar
Markgraf, V., and Scott, L. Lower timberline in central Colorado during the past 15,000 yr. Geology 9, (1981). 231234.Google Scholar
Martinson, D.G., Pisias, N.G., Hays, J.D., Imbrie, J., Moore, T.C. Jr., and Shackleton, N.J. Age dating and the orbital theory of the Ice Ages: development of a high-resolution 0 to 300,000-year chronostratigraphy. Quaternary Research 27, (1987). 129.CrossRefGoogle Scholar
Miller, D.M., Miller, I.M., and Jackson, S.T. Biogeography of Pleistocene conifer species from the Ziegler Reservoir fossil site, Snowmass Village, Colorado. Quaternary Research 82, (2014). 567574. (in this volume) Google Scholar
Nelson, A.R., Millington, A.C., Andrews, J.T., and Nichols, H. Radiocarbon-dated upper Pleistocene glacial sequence, Fraser Valley, Colorado Front Range. Geology 7, (1979). 410414.Google Scholar
Ogden, T. (1979). Geologic map of Colorado. U.S. Geological Survey Geologic Map, 1:500,000 scale.Google Scholar
Pierce, K.L. Pleistocene glaciations of the Rocky Mountains. Gillespie, A.R., Porter, S.C., and Atwater, B.F. The Quaternary Period in the United States. (2004). Elsevier, Amsterdam. 6376.Google Scholar
Pigati, J.S., Miller, I.M., Johnson, K.R., Honke, J.S., Carrara, P.E., Muhs, D.R., Skipp, G., and Bryant, B. Geologic setting and stratigraphy of the Ziegler Reservoir fossil site, Snowmass Village, Colorado. Quaternary Research 82, (2014). 477489. (in this volume) Google Scholar
Reasoner, M.A., and Jodry, M.A. Rapid respnse of alpine timberline vegetation to the Younger Dryas climate oscillation in the Colorado Rocky Mountains, USA. Geology 28, (2000). 5154.Google Scholar
Sears, P.B., and Clisby, K.H. Two long climate records. Science 116, (1952). 176178.Google Scholar
Sharpe, S.E., and Bright, J. A high-elevation MIS 5 hydrologic record using mollusks and ostracodes from Snowmass Village, Colorado, USA. Quaternary Research 82, (2014). 604617. (in this volume) Google Scholar
Strickland, L.E., Baker, R.G., Thompson, R.S., and Miller, D.M. Last interglacial plant macrofossils and climates from Ziegler Reservoir, Snowmass Village, Colorado, USA. Quaternary Research 82, (2014). 553566. (in this volume) Google Scholar
Toney, J.L., and Anderson, R.S. A postglacial paleoecological record from the San Juan Mountains of Colorado USA: fire, climate and vegetation history. The Holocene 16, (2006). 505517.Google Scholar
Weber, W.A., and Wittmann, R.C. Colorado Flora: Western Slope. (1996). University of Colorado Press, Boulder.Google Scholar
Whitlock, C., Sarna-Wojcicki, A.M., Bartlein, P.J., and Nickmann, R.J. Environmental history and tephrostratigraphy at Carp Lake, southern Columbia Basin, Washington, USA. Palaeogeography, Palaeoclimatology, Palaeoecology 155, (2000). 729.Google Scholar
Woolfenden, W.B. A 180,000-year pollen record from Owens Lake, CA: terrestrial vegetation change on orbital scales. Quaternary Research 59, (2003). 430444.Google Scholar