Sensitivity of leaf size and shape to climate: global patterns and paleoclimatic applications.
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Nathan J B Kraft | J. Peñuelas | I. Wright | D. Royer | C. Lusk | G. Jordan | Jonathan M Adams | S. Wing | D. Peppe | U. Niinemets | E. Currano | Kirk R. Johnson | L. Hinojosa | A. Iglesias | C. Jaramillo | Bárbara Cariglino | S. Oliver | S. Newman | E. Leight | Grisha Enikolopov | Margo Fernandez-Burgos | Fabiany Herrera | Edwin Correa | J. M. Erickson | J. W. Hoganson | Elizabeth C Lovelock | G. Rapson | Elias Leight | Sofía Oliver
[1] F. Pérez,et al. Historical and phylogenetic constraints on the incidence of entire leaf margins: insights from a new South American model , 2011 .
[2] S. Kembel,et al. Paleotemperature Proxies from Leaf Fossils Reinterpreted in Light of Evolutionary History , 2010, PloS one.
[3] D. Peppe. Megafloral change in the early and middle Paleocene in the Williston Basin, North Dakota, USA , 2010 .
[4] C. Labandeira,et al. Fossil insect folivory tracks paleotemperature for six million years , 2010 .
[5] R. Spicer,et al. Is southern Africa different? An investigation of the relationship between leaf physiognomy and climate in southern African mesic vegetation , 2010 .
[6] P. Gingerich,et al. Continental warming preceding the Palaeocene–Eocene thermal maximum , 2010, Nature.
[7] D. Royer,et al. Quantification of large uncertainties in fossil leaf paleoaltimetry , 2010 .
[8] Zhekun Zhou,et al. LEAF MARGIN ANALYSIS: A NEW EQUATION FROM HUMID TO MESIC FORESTS IN CHINA , 2010 .
[9] J. Bloch,et al. New Podocnemidid Turtle (Testudines: Pleurodira) from the Middle-Upper Paleocene of South America , 2010 .
[10] D. Royer,et al. Leaf economic traits from fossils support a weedy habit for early angiosperms. , 2010, American journal of botany.
[11] D. Greenwood,et al. How wet was the Arctic Eocene rain forest? Estimates of precipitation from Paleogene Arctic macrofloras , 2010 .
[12] C. Labandeira,et al. Late Paleocene fossils from the Cerrejón Formation, Colombia, are the earliest record of Neotropical rainforest , 2009, Proceedings of the National Academy of Sciences.
[13] D. Greenwood,et al. Depositional setting, fossil flora, and paleoenvironment of the Early Eocene Falkland site, Okanagan Highlands, British Columbia , 2009 .
[14] M. Gandolfo,et al. Papuacedrus (Cupressaceae) in Eocene Patagonia: A new fossil link to Australasian rainforests. , 2009, American journal of botany.
[15] K. Robertson,et al. Phenotypic Plasticity of Leaf Shape along a Temperature Gradient in Acer rubrum , 2009, PloS one.
[16] S. Hasiotis,et al. Transient dwarfism of soil fauna during the Paleocene–Eocene Thermal Maximum , 2009, Proceedings of the National Academy of Sciences.
[17] S. Wing,et al. Palms (Arecaceae) from a Paleocene rainforest of northern Colombia. , 2009, American-Eurasian journal of botany.
[18] S. Vogel. Leaves in the lowest and highest winds: temperature, force and shape. , 2009, The New phytologist.
[19] D. Dilcher,et al. A climatic and taxonomic comparison between leaf litter and standing vegetation from a Florida swamp woodland. , 2009, American journal of botany.
[20] D. Royer,et al. Ecology of Leaf Teeth: a Multi-site Analysis from an Australian Subtropical Rainforest 1 , 2022 .
[21] Alexander K. Hastings,et al. Giant boid snake from the Palaeocene neotropics reveals hotter past equatorial temperatures , 2009, Nature.
[22] D. Peppe. A high resolution chronostratigraphic study of the early Paleocene floral record in the northern Great Plains , 2009 .
[23] D. Boyer,et al. Coordinated sedimentary and biotic change during the Paleocene-Eocene Thermal Maximum in the Bighorn Basin, Wyoming, USA , 2009 .
[24] David C. Tank,et al. An update of the Angiosperm Phylogeny Group classification for the orders and families of flowering plants: , 2009 .
[25] S. Wing,et al. Fossil Araceae from a Paleocene neotropical rainforest in Colombia. , 2008, American-Eurasian journal of botany.
[26] R. Müller,et al. Global plate motion frames: Toward a unified model , 2008 .
[27] C. Jaramillo,et al. Menispermaceae from the Cerrejon Formation, middle to late Paleocene, Colombia. , 2008, American journal of botany.
[28] D. Royer,et al. Sensitivity of leaf size and shape to climate within Acer rubrum and Quercus kelloggii. , 2008, The New phytologist.
[29] Thomas J. Givnish,et al. COMPARATIVE STUDIES OF LEAF FORM: ASSESSING THE RELATIVE ROLES OF SELECTIVE PRESSURES AND PHYLOGENETIC CONSTRAINTS , 2008 .
[30] M. Aizen,et al. Do leaf margins of the temperate forest flora of southern South America reflect a warmer past , 2008 .
[31] D. Royer,et al. Sharply increased insect herbivory during the Paleocene–Eocene Thermal Maximum , 2008, Proceedings of the National Academy of Sciences.
[32] Yang-jian Zhang,et al. Leaf margins and temperature in the North American flora: Recalibrating the paleoclimatic thermometer , 2008 .
[33] A. Carroll,et al. Synoptic reconstruction of a major ancient lake system; Eocene Green River Formation, western United States , 2008 .
[34] Ü. Niinemets,et al. Fossil leaf economics quantified: calibration, Eocene case study, and implications , 2007, Paleobiology.
[35] B. Singer,et al. A Paleocene lowland macroflora from Patagonia reveals significantly greater richness than North American analogs , 2007 .
[36] Z. Kvaček. Do extant nearest relatives of thermophile European Cenozoic plant elements reliably reflect climatic signal , 2007 .
[37] L. Hickey,et al. FOSSIL LEAF SPECIES FROM THE FOX HILLS FORMATION (UPPER CRETACEOUS: NORTH DAKOTA, USA) AND THEIR PALEOGEOGRAPHIC SIGNIFICANCE , 2007, Journal of Paleontology.
[38] V. Mosbrugger,et al. Climatic reconstruction at the Miocene Shanwang basin, China, using leaf margin analysis, CLAMP, coexistence approach, and overlapping distribution analysis. , 2007, American journal of botany.
[39] M. Kraus,et al. Transient drying during the Paleocene–Eocene Thermal Maximum (PETM): Analysis of paleosols in the bighorn basin, Wyoming , 2007 .
[40] L. Hickey,et al. Using leaf margin analysis to estimate the mid-Cretaceous (Albian) paleolatitude of the Baja BC block , 2006 .
[41] M. Westoby,et al. Bivariate line‐fitting methods for allometry , 2006, Biological reviews of the Cambridge Philosophical Society.
[42] C. Villagrán,et al. Are Chilean coastal forests pre‐Pleistocene relicts? Evidence from foliar physiognomy, palaeoclimate, and phytogeography , 2006 .
[43] D. Royer,et al. Why Do Toothed Leaves Correlate with Cold Climates? Gas Exchange at Leaf Margins Provides New Insights into a Classic Paleotemperature Proxy , 2006, International Journal of Plant Sciences.
[44] W. Green. LOOSENING THE CLAMP: AN EXPLORATORY GRAPHICAL APPROACH TO THE CLIMATE LEAF ANALYSIS MULTIVARIATE PROGRAM , 2006 .
[45] J. L. Parra,et al. Very high resolution interpolated climate surfaces for global land areas , 2005 .
[46] Scott L Wing,et al. Transient Floral Change and Rapid Global Warming at the Paleocene-Eocene Boundary , 2005, Science.
[47] V. Mosbrugger,et al. Cenozoic continental climatic evolution of Central Europe. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[48] D. Greenwood. Leaf Margin Analysis: Taphonomic Constraints , 2005 .
[49] T. Feild,et al. Hydathodal leaf teeth of Chloranthus japonicus (Chloranthaceae) prevent guttation‐induced flooding of the mesophyll , 2005 .
[50] D. Royer,et al. Correlations of climate and plant ecology to leaf size and shape: potential proxies for the fossil record. , 2005, American journal of botany.
[51] C. Labandeira,et al. Richness of plant-insect associations in Eocene Patagonia: a legacy for South American biodiversity. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[52] V. Mosbrugger,et al. Environmental signals from leaves--a physiognomic analysis of European vegetation. , 2005, The New phytologist.
[53] M. Gandolfo,et al. Eocene Plant Diversity at Laguna del Hunco and Río Pichileufú, Patagonia, Argentina , 2005, The American Naturalist.
[54] K. Pigg,et al. Fossil Corylopsis and Fothergilla Leaves (Hamamelidaceae) from the Lower Eocene Flora of Republic, Washington, U.S.A., and Their Evolutionary and Biogeographic Significance , 2005, International Journal of Plant Sciences.
[55] S. B. Archibald,et al. Fossil biotas from the Okanagan Highlands, southern British Columbia and northeastern Washington State: climates and ecosystems across an Eocene landscape , 2005 .
[56] S. Wing,et al. Oxygen isotope and paleobotanical estimates of temperature and δ18O–latitude gradients over North America during the early Eocene , 2004 .
[57] D. Greenwood,et al. Paleotemperature Estimation Using Leaf-Margin Analysis: Is Australia Different? , 2004 .
[58] V. Mosbrugger,et al. Testing the climatic estimates from different palaeobotanical methods: an example from the Middle Miocene Shanwang flora of China , 2003 .
[59] V. Mosbrugger,et al. Reconstructing palaeotemperatures using leaf floras – case studies for a comparison of leaf margin analysis and the coexistence approach , 2003 .
[60] P. Wilf,et al. Digital Future for Paleoclimate Estimation from Fossil Leaves? Preliminary Results , 2003 .
[61] J. M. Erickson,et al. Migration of a Late Cretaceous fish , 2003, Nature.
[62] Peter Wilf,et al. High Plant Diversity in Eocene South America: Evidence from Patagonia , 2003, Science.
[63] Kirk R. Johnson,et al. Correlated terrestrial and marine evidence for global climate changes before mass extinction at the Cretaceous–Paleogene boundary , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[64] J. Zachos,et al. Carbon and oxygen isotope records from Paleosols spanning the Paleocene-Eocene boundary, Bighorn Basin, Wyoming , 2003 .
[65] Philip D. Gingerich,et al. Causes and consequences of globally warm climates in the early Paleogene , 2003 .
[66] D. Dilcher,et al. Warmer paleotemperatures for terrestrial ecosystems , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[67] Elizabeth A. Kowalski. Mean annual temperature estimation based on leaf morphology: a test from tropical South America , 2002 .
[68] R. Spicer,et al. Quantitative palaeoclimate estimates from Late Cretaceous and Paleocene leaf floras in the northwest of the South Island, New Zealand , 2002 .
[69] B. Jacobs. Estimation of low-latitude paleoclimates using fossil angiosperm leaves: examples from the Miocene Tugen Hills, Kenya , 2002, Paleobiology.
[70] N. Pitman,et al. Habitat-related error in estimating temperatures from leaf margins in a humid tropical forest. , 2001, American journal of botany.
[71] P. Coley,et al. Insect herbivory, plant defense, and early Cenozoic climate change , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[72] L. Sloan,et al. Trends, Rhythms, and Aberrations in Global Climate 65 Ma to Present , 2001, Science.
[73] V. Mosbrugger,et al. Terrestrial Climate Evolution in Northwest Germany Over the Last 25 Million Years , 2000 .
[74] K. M. Gregory-Wodzicki,et al. Relationships between leaf morphology and climate, Bolivia: implications for estimating paleoclimate from fossil floras , 2000, Paleobiology.
[75] Arthur H. Johnson,et al. POST-DISTURBANCE ABOVEGROUND BIOMASS ACCUMULATION IN GLOBAL SECONDARY FORESTS , 2000 .
[76] S. Wing,et al. Warm Climates in Earth History: Index , 1999 .
[77] B. Jacobs. Estimation of rainfall variables from leaf characters in tropical Africa , 1999 .
[78] P. Koch,et al. Warm Climates in Earth History: An early Eocene cool period? Evidence for ceontinental cooling during the warmest part of the Cenozoic , 1999 .
[79] A. Hall. Inherent Variation in Plant Growth: Physiological Mechanisms and Ecological Consequences , 1999 .
[80] S. Manchester,et al. Estimation of temperature and precipitation from morphological characters of dicotyledonous leaves. , 1998, American journal of botany.
[81] D. Greenwood,et al. USING FOSSIL LEAVES AS PALEOPRECIPITATION INDICATORS : AN EOCENE EXAMPLE , 1998 .
[82] P. Markwick. Fossil crocodilians as indicators of Late Cretaceous and Cenozoic climates: implications for using palaeontological data in reconstructing palaeoclimate , 1998 .
[83] P. Wilf. When are leaves good thermometers? A new case for Leaf Margin Analysis , 1997, Paleobiology.
[84] P. England,et al. The use of a resemblance function in the measurement of climatic parameters from the physiognomy of woody dicotyledons , 1997 .
[85] R. Peet,et al. THE ECOLOGICAL SIGNIFICANCE OF LOBED AND TOOTHED LEAVES IN TEMPERATE FOREST TREES , 1997 .
[86] P. Ashton. The tropical rain forest (2nd edn) , 1997 .
[87] G. Jordan. Uncertainty in palaeoclimatic reconstructions based on leaf physiognomy , 1997 .
[88] A. Deino,et al. Test of climate-leaf physiognomy regression models, their application to two Miocene floras from Kenya, and 40Ar/39Ar dating of the Late Miocene Kapturo site , 1996 .
[89] D. Greenwood,et al. Eocene continental climates and latitudinal temperature gradients , 1995 .
[90] D. Everard,et al. Leaf attributes of South African forest species , 1995 .
[91] J. A. Wolfe. PALEOCLIMATIC ESTIMATES FROM TERTIARY LEAF ASSEMBLAGES , 1995 .
[92] D. Greenwood,et al. The paleoecology of high-latitude Eocene swamp forests from Axel Heiberg Island, Canadian High Arctic , 1994 .
[93] D. Greenwood,et al. Fossils and fossil climate: the case for equable continental interiors in the Eocene , 1993 .
[94] J. A. Wolfe. A method of obtaining climatic parameters from leaf assemblages , 1993 .
[95] D. Greenwood. Taphonomic constraints on foliar physiognomie interpretations of Late Cretaceous and tertiary palaeoeclimates , 1992 .
[96] T. Garland,et al. Procedures for the Analysis of Comparative Data Using Phylogenetically Independent Contrasts , 1992 .
[97] J. A. Wolfe,et al. Middle Eocene dicotyledonous plants from Republic, northeastern Washington , 1987 .
[98] J. A. Wolfe,et al. North American nonmarine climates and vegetation during the Late Cretaceous , 1987 .
[99] Professor Dr. Walter Larcher,et al. Frost Survival of Plants , 1987, Ecological Studies.
[100] J. Felsenstein. Phylogenies and the Comparative Method , 1985, The American Naturalist.
[101] T. Givnish. Leaf and Canopy Adaptations in Tropical Forests , 1984 .
[102] H. Mooney,et al. Physiological ecology of plants of the wet tropics , 1984, Tasks for vegetation Science.
[103] A. Winter. Frost susceptibility of palms experimental data and their interpretation , 1981 .
[104] M. Swaine,et al. Distribution and Ecology of Vascular Plants in a Tropical Rain Forest. Forest Vegetation in Ghana. , 1981 .
[105] G. E. Dolph,et al. Variation in leaf size with respect to climate in Costa Rica. , 1980 .
[106] G. E. Dolph,et al. Variation in Leaf Size with Respect to Climate in the Tropics of the Western Hemisphere , 1980 .
[107] Peter H. Raven,et al. Topics in Plant Population Biology , 1979 .
[108] J. A. Wolfe. Temperature parameters of humid to mesic forests of Eastern Asia and relation to forests of other regions of the Northern Hemisphere and Australasia: analysis of temperature data from more than 400 stations in Eastern Asia , 1979 .
[109] T. Givnish. On the Adaptive Significance of Leaf Form , 1979 .
[110] A. Graham,et al. Vegetation and Vegetational History of Northern Latin America. , 1975 .
[111] R. Whittaker. Communities and Ecosystems , 1975 .
[112] I. Hiscock. Communities and Ecosystems , 1970, The Yale Journal of Biology and Medicine.
[113] S. Vogel. Convective Cooling at Low Airspeeds and the Shapes of Broad Leaves , 1970 .
[114] H. D. Macginitie. The Eocene Green River flora of northwestern Colorado and northeastern Utah , 1969 .
[115] S. Vogel. ''Sun leaves'' and ''shade leaves'' - Differences in convective heat dissipation. , 1968 .
[116] L. Webb. Environmental Relationships of the Structural Types of Australian Rain Forest Vegetation , 1968 .
[117] E. W. Sinnott,et al. THE CLIMATIC DISTRIBUTION OF CERTAIN TYPES OF ANGIOSPERM LEAVES , 1916 .
[118] E. W. Sinnott,et al. A BOTANICAL INDEX OF CRETACEOUS AND TERTIARY CLIMATES. , 1915, Science.
[119] F. H. Billings. Precursory Leaf Serrations of Ulmus , 1905, Botanical Gazette.
[120] BY D. F. PARKHURSTt. OPTIMAL LEAF SIZE IN RELATION TO ENVIRONMENT * , 2022 .