Chemical properties of plant litter in response to elevation
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[1] D. Tilman. The Resource-Ratio Hypothesis of Plant Succession , 1985, The American Naturalist.
[2] R. Dahlgren,et al. Linking Chemical Reactivity and Protein Precipitation to Structural Characteristics of Foliar Tannins , 2003, Journal of Chemical Ecology.
[3] C. Körner. The use of 'altitude' in ecological research. , 2007, Trends in ecology & evolution.
[4] R. Dahlgren,et al. Polyphenols as Regulators of Plant-litter-soil Interactions in Northern California's Pygmy Forest: A Positive Feedback? , 1998 .
[5] Randy A. Dahlgren,et al. Polyphenol control of nitrogen release from pine litter , 1995, Nature.
[6] Maja K. Sundqvist,et al. Within- and Across-Species Responses of Plant Traits and Litter Decomposition to Elevation across Contrasting Vegetation Types in Subarctic Tundra , 2011, PloS one.
[7] D. DeAngelis,et al. Competition and Coexistence: The Effects of Resource Transport and Supply Rates , 1994, The American Naturalist.
[8] J. Koricheva,et al. Regulation of Woody Plant Secondary Metabolism by Resource Availability: Hypothesis Testing by Means of Meta-Analysis , 1998 .
[9] C. Zidorn. Altitudinal variation of secondary metabolites in flowering heads of the Asteraceae: trends and causes , 2010, Phytochemistry Reviews.
[10] Tadashi Fukami,et al. Long-term ecological dynamics: reciprocal insights from natural and anthropogenic gradients , 2005, Proceedings of the Royal Society B: Biological Sciences.
[11] D. Huber,et al. Ecosystem, Location, and Climate Effects on Foliar Secondary Metabolites of Lodgepole Pine Populations from Central British Columbia , 2011, Journal of Chemical Ecology.
[12] Eric Garnier,et al. Assessing the effects of land-use change on plant traits, communities and ecosystem functioning in grasslands: a standardized methodology and lessons from an application to 11 European sites. , 2007, Annals of botany.
[13] Susan E. Hartley,et al. A protein competition model of phenolic allocation , 1999 .
[14] G. Bending,et al. Sequestration of soil nitrogen as tannin-protein complexes may improve the competitive ability of sheep laurel (Kalmia angustifolia) relative to black spruce (Picea mariana). , 2009, The New phytologist.
[15] S. Hättenschwiler,et al. Leaf traits and decomposition in tropical rainforests: revisiting some commonly held views and towards a new hypothesis. , 2011, The New phytologist.
[16] David A. Wardle,et al. An ecosystem‐level perspective of allelopathy , 1998 .
[17] F. Stuart Chapin,et al. Carbon/nutrient balance of boreal plants in relation to vertebrate herbivory , 1983 .
[18] J. Koricheva. The Carbon-Nutrient Balance Hypothesis is dead; long live the carbon-nutrient balance hypothesis? , 2002 .
[19] F. Bello,et al. Community trait response to environment: disentangling species turnover vs intraspecific trait variability effects , 2011 .
[20] D. Wardle,et al. Determinants of litter mixing effects in a Swedish boreal forest , 2003 .
[21] P. Vitousek,et al. The role of polyphenols in terrestrial ecosystem nutrient cycling. , 2000, Trends in ecology & evolution.
[22] C. LeRoy,et al. From Genes to Ecosystems: The Genetic Basis of Condensed Tannins and Their Role in Nutrient Regulation in a Populus Model System , 2008, Ecosystems.
[23] M. Nilsson. Separation of allelopathy and resource competition by the boreal dwarf shrub Empetrum hermaphroditum Hagerup , 1994, Oecologia.
[24] M. Wink,et al. Elevational variation of quinolizidine alkaloid contents in a lupine (Lupinus argenteus) of the Rocky Mountains , 1994, Journal of Chemical Ecology.
[25] P. Vitousek,et al. Polyphenols in litter from tropical montane forests across a wide range in soil fertility , 2003 .
[26] Terry V. Callaghan,et al. Leaf digestibility and litter decomposability are related in a wide range of subarctic plant species and types , 2004 .
[27] R. Naiman,et al. Selective Foraging and Ecosystem Processes in Boreal Forests , 1992, The American Naturalist.
[28] M. Lerdau,et al. Benefits of the Carbon‐Nutrient Balance Hypothesis , 2002 .
[29] M. Nilsson,et al. Behaviour and recovery of the secondary metabolite batatasin-III from boreal forest humus: influence of temperature, humus type and microbial community , 2005 .
[30] N. Stamp. Out Of The Quagmire Of Plant Defense Hypotheses , 2003, The Quarterly Review of Biology.
[31] Jason G. Hamilton,et al. The carbon–nutrient balance hypothesis: its rise and fall , 2001 .
[32] A. Michelsen,et al. Long-term experimental warming, shading and nutrient addition affect the concentration of phenolic compounds in arctic-alpine deciduous and evergreen dwarf shrubs , 2006, Oecologia.
[33] P. Keim,et al. Genetically based trait in a dominant tree affects ecosystem processes , 2004 .
[34] R. Bradley,et al. Soil enzyme inhibition by condensed litter tannins may drive ecosystem structure and processes: the case of Kalmia angustifolia. , 2007, The New phytologist.
[35] Eric Garnier,et al. Leaf traits capture the effects of land use changes and climate on litter decomposability of grasslands across Europe. , 2009, Ecology.
[36] W. Bowman,et al. Phenolic-rich leaf carbon fractions differentially influence microbial respiration and plant growth , 2008, Oecologia.
[37] F. Berendse,et al. Litter decomposability: a neglected component of plant fitness. , 1994 .
[38] R. Dahlgren,et al. Tannins in nutrient dynamics of forest ecosystems - a review , 2003, Plant and Soil.
[39] J. Dighton,et al. Control of pitch pine seed germination and initial growth exerted by leaf litters and polyphenolic compounds , 2004, Biology and Fertility of Soils.
[40] Maja K. Sundqvist,et al. Interactive effects of vegetation type and elevation on aboveground and belowground properties in a subarctic tundra , 2011 .
[41] R. Bradley,et al. Do late-successional tannin-rich plant communities occurring on highly acidic soils increase the DON/DIN ratio? , 2008, Biology and Fertility of Soils.
[42] R. Barbehenn,et al. Tannins in plant-herbivore interactions. , 2011, Phytochemistry.
[43] B. Graae,et al. Phosphorus availability and microbial respiration across different tundra vegetation types , 2012, Biogeochemistry.
[44] F. Stuart Chapin,et al. Resource Availability and Plant Antiherbivore Defense , 1985, Science.
[45] D. Goodall,et al. Some considerations in the use of point quadrats for the analysis of vegetation. , 1952, Australian journal of scientific research. Ser. B: Biological sciences.
[46] A. Michelsen,et al. Simulated climate change affecting microorganisms, nematode density and biodiversity in subarctic soils , 1999, Plant and Soil.
[47] B. G. Chan,et al. The conversion of procyanidins and prodelphinidins to cyanidin and delphinidin , 1985 .
[48] Sandra Díaz,et al. Plant species traits are the predominant control on litter decomposition rates within biomes worldwide. , 2008, Ecology letters.
[49] A. Michelsen,et al. Nordic Empetrum dominated ecosystems: function and susceptibility to environmental changes. , 2000 .
[50] C. Mcarthur,et al. Rethinking the role of many plant phenolics - protection from photodamage not herbivores? , 2002 .
[51] F. Stuart Chapin,et al. Plant Phenols and Nutrients in Relation to Variations in Climate and Rodent Grazing , 1986, The American Naturalist.
[52] A. Hagerman. Radial diffusion method for determining tannin in plant extracts , 1987, Journal of Chemical Ecology.
[53] D. Wardle,et al. Variation in protein complexation capacity among and within six plant species across a boreal forest chronosequence , 2010, Plant Ecology.
[54] C. Körner,et al. Growth and carbon relations of tree line forming conifers at constant vs. variable low temperatures , 2009 .
[55] C. Körner,et al. The carbon charging of pines at the climatic treeline: a global comparison , 2003, Oecologia.
[56] R. Hendrick,et al. Plant litter chemistry and mycorrhizal roots promote a nitrogen feedback in a temperate forest , 2009 .
[57] D. Wardle,et al. Among- and within-species variation in plant litter decomposition in contrasting long-term chronosequences , 2009 .
[58] E. Saetnan,et al. Effects of Simulated Herbivory on Defensive Compounds in Forage Plants of Norwegian Alpine Rangelands , 2009, Journal of Chemical Ecology.
[59] J. Salminen,et al. Chemical ecology of tannins and other phenolics: we need a change in approach , 2011 .
[60] S. Hättenschwiler,et al. Interspecific variation in leaf litter tannins drives decomposition in a tropical rain forest of French Guiana. , 2010, Ecology.
[61] U. Molau,et al. Linkages between N turnover and plant community structure in a tundra landscape , 2007, Plant and Soil.
[62] C. Körner,et al. A test of the growth-limitation theory for alpine tree line formation in evergreen and deciduous taxa of the eastern Himalayas , 2008 .
[63] Sandra Díaz,et al. Scaling environmental change through the community‐level: a trait‐based response‐and‐effect framework for plants , 2008 .
[64] D. Wardle,et al. Changes in coexistence mechanisms along a long‐term soil chronosequence revealed by functional trait diversity , 2012 .
[65] Joshua P. Schimel,et al. The Role of Balsam Poplar Secondary Chemicals in Controlling Soil Nutrient Dynamics through Succession in the Alaskan Taiga , 1998 .
[66] J. Estes,et al. A new assay for quantifying brown algal phlorotannins and comparisons to previous methods , 1996, Journal of Chemical Ecology.
[67] A. Eskelinen,et al. Links between plant community composition, soil organic matter quality and microbial communities in contrasting tundra habitats , 2009, Oecologia.