Habitat structure determines resource use by zooplankton in temperate lakes.
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Eric J Ward | Eric R Larson | Brice X Semmens | T. Francis | D. Schindler | G. Holtgrieve | M. Scheuerell | E. Larson | E. Ward | B. Semmens | Daniel E Schindler | Tessa B Francis | Gordon W Holtgrieve | Mark D Scheuerell
[1] William F. Fagan,et al. Nutritional constraints in terrestrial and freshwater food webs , 2000, Nature.
[2] R. Hesslein,et al. Contributions of Benthic Algae to Lake Food Webs as Revealed by Stable Isotope Analysis , 1995, Journal of the North American Benthological Society.
[3] B. Fry. Stable Isotope Ecology , 2006 .
[4] C. Goldman. Primary productivity, nutrients, and transparency during the early onset of eutrophication in ultra‐oligotrophic Lake Tahoe, Califomia‐Nevada1 , 1988 .
[5] David R. Anderson,et al. Multimodel Inference , 2004 .
[6] Monika Winder,et al. TRADE-OFFS IN DAPHNIA HABITAT SELECTION , 2004 .
[7] G. Kling,et al. Carbon Dioxide Supersaturation in the Surface Waters of Lakes , 1994, Science.
[8] J. Elser,et al. Elemental ratios and the uptake and release of nutrients by phytoplankton and bacteria in three lakes of the Canadian shield , 1995, Microbial Ecology.
[9] Daniel E. Schindler,et al. Including source uncertainty and prior information in the analysis of stable isotope mixing models. , 2010, Environmental science & technology.
[10] M. Tiirola,et al. Whole-lake dissolved inorganic 13C additions reveal seasonal shifts in zooplankton diet. , 2008, Ecology.
[11] Hari Seshan,et al. Phytoplankton, not allochthonous carbon, sustains herbivorous zooplankton production , 2009, Proceedings of the National Academy of Sciences.
[12] Andrew L Jackson,et al. Erroneous behaviour of MixSIR, a recently published Bayesian isotope mixing model: a discussion of Moore & Semmens (2008). , 2009, Ecology letters.
[13] S. Carpenter,et al. Species-specific algal responses to zooplankton: experimental and field observations in three nutrient-limited lakes , 1987 .
[14] R. Sterner,et al. Diel integration of food quality by Daphnia: Luxury consumption by a freshwater planktonic herbivore , 2001 .
[15] E. Angulo,et al. Variation in discrimination factors (Δ15N and Δ13C): the effect of diet isotopic values and applications for diet reconstruction , 2009 .
[16] S. Carpenter,et al. Controls of δ13C‐DIC in lakes: Geochemistry, lake metabolism, and morphometry , 2004 .
[17] D. Pa,et al. Productivity and heterotrophy influences on zooplankton delta13C in northern temperate lakes , 1997 .
[18] Serhiy Morozov,et al. A Distributed, Architecture-Centric Approach to Computing Accurate Recommendations from Very Large and Sparse Datasets , 2011 .
[19] Stephen R. Carpenter,et al. ECOSYSTEM SUBSIDIES: TERRESTRIAL SUPPORT OF AQUATIC FOOD WEBS FROM 13C ADDITION TO CONTRASTING LAKES , 2005 .
[20] H. Hämäläinen,et al. Seasonal shifts in the diet of lake zooplankton revealed by phospholipid fatty acid analysis , 2009 .
[21] Stephen R. Carpenter,et al. The Trophic Cascade in Lakes , 1993 .
[22] W. Wurtsbaugh,et al. Fertilization of an Oligotrophic Lake with a Deep Chlorophyll Maximun: Predicting the Effect on Primary Productivity , 1997 .
[23] M. Boersma,et al. On the cost of vertical migration: are feeding conditions really worse at greater depths? , 2003 .
[24] S. Carpenter,et al. Pathways of organic carbon utilization in small lakes: Results from a whole‐lake 13C addition and coupled model , 2002 .
[25] P. Giorgio. Ecosystem‐specific patterns in the relationship between zooplankton and POM or microplankton del13C , 1996 .
[26] L. Tranvik,et al. Methane as a source of carbon and energy for lake pelagic food webs , 2003 .
[27] R. Wetzel. Limnology: Lake and River Ecosystems , 1975 .
[28] Daniel E. Schindler,et al. TROPHIC CASCADES, NUTRIENTS, AND LAKE PRODUCTIVITY: WHOLE‐LAKE EXPERIMENTS , 2001 .
[29] D. Post. USING STABLE ISOTOPES TO ESTIMATE TROPHIC POSITION: MODELS, METHODS, AND ASSUMPTIONS , 2002 .
[30] Jones,et al. Carbon stable isotopes reveal complex trophic interactions in lake plankton. , 1999, Rapid communications in mass spectrometry : RCM.
[31] Chris T. Darimont,et al. Quantifying Inter- and Intra-Population Niche Variability Using Hierarchical Bayesian Stable Isotope Mixing Models , 2009, PloS one.
[32] L. Tranvik,et al. Terrestrial carbon and intraspecific size-variation shape lake ecosystems. , 2007, Trends in ecology & evolution.
[33] E. Fee. The vertical and seasonal distribution of chlorophyll in lakes of the Experimental Lakes Area, northwestern Ontario: Implications for primary production estimates , 1976 .
[34] S. Carpenter,et al. Whole-lake carbon-13 additions reveal terrestrial support of aquatic food webs , 2004, Nature.
[35] S. Carpenter,et al. Does terrestrial organic carbon subsidize the planktonic food web in a clear‐water lake? , 2007 .
[36] P. Soranno,et al. The trophic cascade in lakes: Effects of predators and food supply on diel vertical migration of Daphnia , 1993 .
[37] Elena Litchman,et al. Algal games: The vertical distribution of phytoplankton in poorly mixed water columns , 2001 .
[38] Bradley P. Carlin,et al. Bayesian measures of model complexity and fit , 2002 .
[39] A. Mazumder,et al. Temporal variation in body composition (C : N) helps explain seasonal patterns of zooplankton δ13C , 2005 .
[40] Brice X Semmens,et al. Incorporating uncertainty and prior information into stable isotope mixing models. , 2008, Ecology letters.
[41] A. Mazumder,et al. Habitat specialization and the exploitation of allochthonous carbon by zooplankton. , 2006, Ecology.
[42] R. Wetzel,et al. Land-water interfaces: Metabolic and limnological regulators , 1990 .
[43] M. Meili,et al. Taxon‐specific variation in the stable isotopic signatures (δ13C and δ15N) of lake phytoplankton , 2006 .
[44] B. Peterson,et al. STABLE ISOTOPES IN ECOSYSTEM STUDIES , 1987 .
[45] S. Carpenter,et al. Differential support of lake food webs by three types of terrestrial organic carbon. , 2006, Ecology letters.
[46] Daniel E. Schindler,et al. Coalescence in the Lake Washington story: Interaction strengths in a planktonic food web , 2006 .