Energetic equivalence underpins the size structure of tree and phytoplankton communities
暂无分享,去创建一个
A. Perna | E. White | R. Adrian | G. Yvon‐Durocher | Daniel M. Perkins | P. Cermeño | U. Gaedke | M. Huete-Ortega
[1] C. R. White,et al. Phytoplankton size-scaling of net-energy flux across light and biomass gradients. , 2017, Ecology.
[2] D. Caron,et al. Mixotrophy in the Marine Plankton. , 2017, Annual review of marine science.
[3] A. M. Edwards,et al. Testing and recommending methods for fitting size spectra to data , 2017 .
[4] V. Smith,et al. Major evolutionary transitions of life, metabolic scaling and the number and size of mitochondria and chloroplasts , 2016, Proceedings of the Royal Society B: Biological Sciences.
[5] Ben A. Ward,et al. Marine mixotrophy increases trophic transfer efficiency, mean organism size, and vertical carbon flux , 2016, Proceedings of the National Academy of Sciences.
[6] Stephanie A. Bohlman,et al. Dominance of the suppressed: Power-law size structure in tropical forests , 2016, Science.
[7] R. Adrian,et al. Winter severity determines functional trait composition of phytoplankton in seasonally ice‐covered lakes , 2016, Global change biology.
[8] R. Dubayah,et al. Assessing the general patterns of forest structure: quantifying tree and forest allometric scaling relationships in the United States , 2015 .
[9] S. Lehtinen,et al. Cell volumes of marine phytoplankton from globally distributed coastal data sets , 2015 .
[10] J. A. Vilar,et al. Annual trend patterns of phytoplankton species abundance belie homogeneous taxonomical group responses to climate in the NE Atlantic upwelling. , 2015, Marine environmental research.
[11] E. Marañón,et al. Distinct patterns in the size-scaling of abundance and metabolism in coastal and open-ocean phytoplankton communities , 2014 .
[12] L. Rudstam,et al. A compendium of cell and natural unit biovolumes for >1200 freshwater phytoplankton species , 2014 .
[13] M. Scheffer,et al. Why trees and shrubs but rarely trubs? , 2014, Trends in ecology & evolution.
[14] E. Marañón,et al. Photosynthesis and respiration in marine phytoplankton: Relationship with cell size, taxonomic affiliation, and growth phase , 2014 .
[15] Ray Hilborn,et al. The Ecological Detective , 2013 .
[16] E. White,et al. A Strong Test of the Maximum Entropy Theory of Ecology , 2013, The American Naturalist.
[17] Ethan P. White,et al. The EcoData Retriever: Improving Access to Existing Ecological Data , 2013, PloS one.
[18] Andrew O. Finley,et al. Tropical tree growth is correlated with soil phosphorus, potassium, and calcium, though not for legumes , 2012 .
[19] O. Phillips,et al. ForestPlots.net: a web application and research tool to manage and analyse tropical forest plot data , 2011 .
[20] Owen L. Petchey,et al. Across ecosystem comparisons of size structure: methods, approaches and prospects , 2011 .
[21] B. R. Ramesh,et al. Forest stand structure and composition in 96 sites along environmental gradients in the central Western Ghats of India , 2010 .
[22] Melanie E. Moses,et al. Shifts in metabolic scaling, production, and efficiency across major evolutionary transitions of life , 2010, Proceedings of the National Academy of Sciences.
[23] D. Harbour,et al. Long-term phytoplankton community dynamics in the western English Channel , 2010 .
[24] B. Ayala-Orozco,et al. Beyond the tropics: forest structure in a temperate forest mapped plot , 2010 .
[25] P. Keeling. The endosymbiotic origin, diversification and fate of plastids , 2010, Philosophical Transactions of the Royal Society B: Biological Sciences.
[26] D. Harbour,et al. Time series of phyto- and microzooplankton abundance and composition at station L4 in the English Channel from 1988 to 2009 , 2010 .
[27] James H. Brown,et al. Changes in a tropical forest support metabolic zero-sum dynamics. , 2009, Ecology letters.
[28] James H Brown,et al. Extensions and evaluations of a general quantitative theory of forest structure and dynamics , 2009, Proceedings of the National Academy of Sciences.
[29] Geoffrey B. West,et al. A general quantitative theory of forest structure and dynamics , 2009, Proceedings of the National Academy of Sciences.
[30] Ethan P White,et al. On the relationship between mass and diameter distributions in tree communities. , 2008, Ecology letters.
[31] Steven L. Chown,et al. Mean mass-specific metabolic rates are strikingly similar across life's major domains: Evidence for life's metabolic optimum , 2008, Proceedings of the National Academy of Sciences.
[32] D. Raffaelli,et al. Three allometric relations of population density to body mass: theoretical integration and empirical tests in 149 food webs. , 2008, Ecology letters.
[33] X. Irigoien,et al. Effects of Lugol's fixation on the size structure of natural nano-microplankton samples, analyzed by means of an automatic counting method , 2008 .
[34] Glen A. Tarran,et al. High bacterivory by the smallest phytoplankton in the North Atlantic Ocean , 2008, Nature.
[35] E. Delong,et al. The Microbial Engines That Drive Earth's Biogeochemical Cycles , 2008, Science.
[36] F. G. Figueiras,et al. Species richness and cell-size distribution: size structure of phytoplankton communities , 2008 .
[37] B. Enquist,et al. On estimating the exponent of power-law frequency distributions. , 2008, Ecology.
[38] Emilio Marañón,et al. Inter-specific scaling of phytoplankton production and cell size in the field , 2007 .
[39] A. M. Edwards,et al. Revisiting Lévy flight search patterns of wandering albatrosses, bumblebees and deer , 2007, Nature.
[40] P. White,et al. A MULTISCALE STUDY OF VASCULAR PLANTS IN A NORTH CAROLINA PIEDMONT FOREST , 2007 .
[41] Mark E. J. Newman,et al. Power-Law Distributions in Empirical Data , 2007, SIAM Rev..
[42] S. Ernest,et al. Relationships between body size and abundance in ecology. , 2007, Trends in ecology & evolution.
[43] E. Suzuki,et al. Mortality and growth of trees in peat-swamp and heath forests in Central Kalimantan after severe drought , 2007, Plant Ecology.
[44] D. Harbour,et al. Invariant scaling of phytoplankton abundance and cell size in contrasting marine environments. , 2006, Ecology letters.
[45] Xabier Irigoien,et al. Scaling the metabolic balance of the oceans. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[46] Stephanie A. Bohlman,et al. Testing metabolic ecology theory for allometric scaling of tree size, growth and mortality in tropical forests. , 2006, Ecology letters.
[47] David Kenfack,et al. Comparing tropical forest tree size distributions with the predictions of metabolic ecology and equilibrium models. , 2006, Ecology letters.
[48] A. Kerkhoff,et al. Ecosystem allometry: the scaling of nutrient stocks and primary productivity across plant communities. , 2006, Ecology letters.
[49] Mark G. Tjoelker,et al. Universal scaling of respiratory metabolism, size and nitrogen in plants , 2006, Nature.
[50] N. Pitman,et al. Catastrophic natural origin of a species-poor tree community in the world's richest forest , 2005, Journal of Tropical Ecology.
[51] David R. Anderson,et al. Multimodel Inference , 2004 .
[52] James H. Brown,et al. Toward a metabolic theory of ecology , 2004 .
[53] A. Irwin,et al. Resource limitation alters the 3/4 size scaling of metabolic rates in phytoplankton , 2004 .
[54] Geoffrey B. West,et al. The predominance of quarter-power scaling in biology , 2004 .
[55] Stephen P. Hubbell,et al. Tropical forest dynamics across a rainfall gradient and the impact of an El Niño dry season , 2004, Journal of Tropical Ecology.
[56] David A. Coomes,et al. Disturbances prevent stem size‐density distributions in natural forests from following scaling relationships , 2003 .
[57] Toshihiko Yamada,et al. Tree species differentiation in growth, recruitment and allometry in relation to maximum height in a Bornean mixed dipterocarp forest , 2003 .
[58] Kevin D. Janni. Global Patterns of Plant Diversity: Alwyn H. Gentry’s Forest Transect Data Set , 2003 .
[59] B. Enquist. Universal scaling in tree and vascular plant allometry: toward a general quantitative theory linking plant form and function from cells to ecosystems. , 2002, Tree physiology.
[60] Robert B. Waide,et al. Land use history, environment, and tree composition in a tropical forest , 2002 .
[61] S. Menden‐Deuer,et al. Effect of preservation on dinoflagellate and diatom cell volume, and consequences for carbon biomass predictions , 2001 .
[62] James H. Brown,et al. UNM Digital Repository UNM Digital Repository Effects of size and temperature on metabolic rate Effects of size and temperature on metabolic rate , 2022 .
[63] E. Suzuki,et al. Allometric differentiation among tropical tree seedlings in heath and peat-swamp forests , 2001, Journal of Tropical Ecology.
[64] Richard Condit,et al. Floristic composition across a climatic gradient in a neotropical lowland forest , 2001 .
[65] Karl J. Niklas,et al. Invariant scaling relations across tree-dominated communities , 2001, Nature.
[66] Toshihiro Yamada,et al. Dynamic steady state of patch-mosaic tree size structure of a mixed dipterocarp forest regulated by local crowding , 2001, Ecological Research.
[67] K J Niklas,et al. Invariant scaling relationships for interspecific plant biomass production rates and body size , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[68] James H. Brown,et al. A general model for the structure and allometry of plant vascular systems , 1999, Nature.
[69] S. DeWalt,et al. Ethnobotany of the Tacana: Quantitative inventories of two permanent plots of Northwestern Bolivia , 1999, Economic Botany.
[70] J. Lawton. Are there general laws in ecology , 1999 .
[71] Stephen J. Wright,et al. Light-Gap disturbances, recruitment limitation, and tree diversity in a neotropical forest , 1999, Science.
[72] S. Hubbell,et al. Predicting Population Trends from Size Distributions: A Direct Test in a Tropical Tree Community , 1998, The American Naturalist.
[73] James H. Brown,et al. Allometric scaling of plant energetics and population density , 1998, Nature.
[74] Richard Condit,et al. Tropical Forest Census Plots: Methods and Results from Barro Colorado Island, Panama and a Comparison with Other Plots , 1998 .
[75] J. Randerson,et al. Primary production of the biosphere: integrating terrestrial and oceanic components , 1998, Science.
[76] R. Hilborn,et al. The Ecological Detective: Confronting Models with Data , 1997 .
[77] Robert B. Waide,et al. Responses of Tree Species to Hurricane Winds in Subtropical Wet Forest in Puerto Rico: Implications for Tropical Tree Life Histories , 1994 .
[78] S. Scheiner,et al. Global patterns of plant diversity , 1994, Evolutionary Ecology.
[79] Paul J. Harrison,et al. Estimating carbon, nitrogen, protein, and chlorophyll a from volume in marine phytoplankton , 1994 .
[80] Robert K. Peet,et al. Scale dependence of vegetation‐environment correlations: A case study of a North Carolina piedmont woodland , 1993 .
[81] U. Gaedke. The size distribution of plankton biomass in a large lake and its seasonal variability , 1992 .
[82] Raymond L. Lindeman. The trophic-dynamic aspect of ecology , 1942 .
[83] C. Jiggins,et al. Supplementary data References , 2010 .
[84] Ethan P. White,et al. Multimodality in the individual size distributions of bird communities , 2011 .
[85] E. Marañón,et al. General patterns in the size scaling of phytoplankton abundance in coastal waters during a 10-year time series. , 2010 .
[86] J. Curry,et al. CONFRONTING MODELS WITH DATA , 2003 .
[87] A. Lugo,et al. Estimating biomass and biomass change of tropical forests , 1997 .
[88] William K. W. Li. Primary production of prochlorophytes, cyanobacteria, and eucaryotic ultraphytoplankton: Measurements from flow cytometric sorting , 1994 .
[89] W. B. Smith,et al. Allometric Biomass Equations for 98 Species of Herbs, Shrubs, and Small Trees , 1983 .
[90] M. Kleiber. Body size and metabolism , 1932 .