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Martínez-Sosa, Pablo; Tierney, Jessica E; Stefanescu, Ioana C; Crampton-Flood, Emily Dearing; Shuman, Bryan N; Routson, Cody (2021): A global Bayesian temperature calibration for lacustrine brGDGTs [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.931169

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Abstract:
Despite widespread use of branched glycerol dialkyl glycerol tetraethers (brGDGTs) for paleo-temperature reconstruction, no global calibration for their application in lakes has been generated since improved analytical methods have allowed for the separation of the structural isomers [Hopmans et al., 2016]. This is a substantial obstacle for the application of this tool as soil calibrations underestimate temperature values when applied to lake sediments. In order to generate a global calibration, we present a comprehensive dataset (N = 272) of lacustrine brGDGT distributions, consisting of both new and previously reported samples [Boldt et al., 2015; Dang et al., 2018; 2016; Li et al., 2017; Stefanescu et al., 2021], spanning a wide range of geographical locations. In addition, we compiled environmental information from these locations through in situ measurements [Li et al., 2017] and literature search for pH, conductivity, and nutrient content. For parameters such as mean annual air temperature (MAAT), temperature of months above freezing (MAF), mean annual precipitation (MAP), we estimated values from either the CRU [Osborn and Jones, 2014] or PRISM [https://prism.oregonstate.edu/] products depending on the location. Our new calibration [Martínez-Sosa et al., 2021] facilitates the use of lacustrine brGDGTs to reconstruct continental temperatures, a vital piece of information for understanding past climates.
Keyword(s):
calibration; lakes
Supplement to:
Martínez-Sosa, Pablo; Tierney, Jessica E; Stefanescu, Ioana C; Crampton-Flood, Emily Dearing; Shuman, Bryan N; Routson, Cody (2021): A global Bayesian temperature calibration for lacustrine brGDGTs. https://doi.org/10.31223/X5PS3P
Related to:
Boldt, Brandon R; Kaufman, Darrell S; McKay, Nicholas; Briner, Jason P (2015): Holocene summer temperature reconstruction from sedimentary chlorophyll content, with treatment of age uncertainties, Kurupa Lake, Arctic Alaska. The Holocene, 25(4), 641-650, https://doi.org/10.1177/0959683614565929
Dang, Xinyue; Ding, Weihua; Yang, Huan; Pancost, Richard D; Naafs, Bernhard David A; Xue, Jiantao; Lin, X; Lu, Jiayi; Xie, Shucheng (2018): Different temperature dependence of the bacterial brGDGT isomers in 35 Chinese lake sediments compared to that in soils. Organic Geochemistry, 119, 72-79, https://doi.org/10.1016/j.orggeochem.2018.02.008
Dang, Xinyue; Xue, Jiantao; Yang, Huan; Xie, Shucheng (2016): Environmental impacts on the distribution of microbial tetraether lipids in Chinese lakes with contrasting pH: Implications for lacustrine paleoenvironmental reconstructions. Science China Earth Sciences, 59(5), 939-950, https://doi.org/10.1007/s11430-015-5234-z
Hopmans, Ellen C; Schouten, Stefan; Sinninghe Damsté, Jaap S (2016): The effect of improved chromatography on GDGT-based palaeoproxies. Organic Geochemistry, 93, 1-6, https://doi.org/10.1016/j.orggeochem.2015.12.006
Li, J; Naafs, Bernhard David A; Pancost, Richard D; Yang, Huan; Liu, Deng; Xie, Shucheng (2017): Distribution of branched tetraether lipids in ponds from Inner Mongolia, NE China: Insight into the source of brGDGTs. Organic Geochemistry, 112, 127-136, https://doi.org/10.1016/j.orggeochem.2017.07.005
Osborn, Timothy J; Jones, Philip D (2014): The CRUTEM4 land-surface air temperature data set: construction, previous versions and dissemination via Google Earth. Earth System Science Data, 6(1), 61-68, https://doi.org/10.5194/essd-6-61-2014
Stefanescu, Ioana C; Shuman, Bryan N; Tierney, Jessica E (2021): Temperature and water depth effects on brGDGT distributions in sub-alpine lakes of mid-latitude North America. Organic Geochemistry, 152, 104174, https://doi.org/10.1016/j.orggeochem.2020.104174
Status:
Curation Level: Basic curation (CurationLevelB)
Size:
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