Going underground: root traits as drivers of ecosystem processes.
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[1] H. Maherali. Is there an association between root architecture and mycorrhizal growth response? , 2014, The New phytologist.
[2] M. Schloter,et al. Contribution of above- and below-ground plant traits to the structure and function of grassland soil microbial communities. , 2014, Annals of botany.
[3] Fabien Quétier,et al. Plant trait-based models identify direct and indirect effects of climate change on bundles of grassland ecosystem services , 2014, Proceedings of the National Academy of Sciences.
[4] H. Zeng,et al. Leading dimensions in absorptive root trait variation across 96 subtropical forest species. , 2014, The New phytologist.
[5] P. Midford,et al. Patterns in root traits of woody species hosting arbuscular and ectomycorrhizas: implications for the evolution of belowground strategies , 2014, Ecology and evolution.
[6] D. Beerling,et al. Ectomycorrhizal fungi and past high CO2 atmospheres enhance mineral weathering through increased below-ground carbon-energy fluxes , 2014, Biology Letters.
[7] P. Reich. The world‐wide ‘fast–slow’ plant economics spectrum: a traits manifesto , 2014 .
[8] Benjamin L Turner,et al. Mycorrhiza-mediated competition between plants and decomposers drives soil carbon storage , 2014, Nature.
[9] T. Kuyper,et al. Plant species identity surpasses species richness as a key driver of N2O emissions from grassland , 2014, Global change biology.
[10] L. Comas,et al. Root traits contributing to plant productivity under drought , 2013, Front. Plant Sci..
[11] Z. Cardon,et al. Sagebrush carrying out hydraulic lift enhances surface soil nitrogen cycling and nitrogen uptake into inflorescences , 2013, Proceedings of the National Academy of Sciences.
[12] E. Pendall,et al. Altered root traits due to elevated CO2: a meta‐analysis , 2013 .
[13] Sandra Lavorel,et al. A novel framework for linking functional diversity of plants with other trophic levels for the quantification of ecosystem services , 2013 .
[14] Y. Carrillo,et al. Rhizosphere priming: a nutrient perspective , 2013, Front. Microbiol..
[15] M. Kershner,et al. The distribution of below‐ground traits is explained by intrinsic species differences and intraspecific plasticity in response to root neighbours , 2013 .
[16] H. Zeng,et al. Variation of first‐order root traits across climatic gradients and evolutionary trends in geological time , 2013 .
[17] Richard P Phillips,et al. The mycorrhizal-associated nutrient economy: a new framework for predicting carbon-nutrient couplings in temperate forests. , 2013, The New phytologist.
[18] Han Y. H. Chen,et al. Intrinsic and Extrinsic Controls of Fine Root Life Span , 2013 .
[19] D. Metcalfe,et al. Are ectomycorrhizal fungi alleviating or aggravating nitrogen limitation of tree growth in boreal forests? , 2013, The New phytologist.
[20] R. Bardgett,et al. Hierarchical responses of plant–soil interactions to climate change: consequences for the global carbon cycle , 2013 .
[21] Michael Bahn,et al. Relative contributions of plant traits and soil microbial properties to mountain grassland ecosystem services , 2013 .
[22] W. R. Whalley,et al. Roots, water, and nutrient acquisition: let's get physical. , 2012, Trends in plant science.
[23] Bill Shipley,et al. Abiotic drivers and plant traits explain landscape-scale patterns in soil microbial communities. , 2012, Ecology letters.
[24] F. Pugnaire,et al. Hydraulic lift promotes selective root foraging in nutrient-rich soil patches. , 2012, Functional plant biology : FPB.
[25] L. Mommer,et al. The role of roots in the resource economics spectrum. , 2012, The New phytologist.
[26] T. S. Adams,et al. Predicting fine root lifespan from plant functional traits in temperate trees. , 2012, The New phytologist.
[27] S. Grayston,et al. Evidence of a strong coupling between root exudation, C and N availability, and stimulated SOM decomposition caused by rhizosphere priming effects , 2012, Ecology and evolution.
[28] P. Midford,et al. EVOLUTIONARY PATTERNS AND BIOGEOCHEMICAL SIGNIFICANCE OF ANGIOSPERM ROOT TRAITS , 2012 .
[29] M. Kramer,et al. Stoichiometry constrains microbial response to root exudation- insights from a model and a field experiment in a temperate forest , 2012 .
[30] E. Schulze,et al. Using Plant Functional Traits to Explain Diversity–Productivity Relationships , 2012, PloS one.
[31] S. Hoeppner,et al. Interactive responses of old‐field plant growth and composition to warming and precipitation , 2012 .
[32] M. Pärtel,et al. Plant species richness belowground: higher richness and new patterns revealed by next‐generation sequencing , 2012, Molecular ecology.
[33] D. Herman,et al. Interactions between an arbuscular mycorrhizal fungus and a soil microbial community mediating litter decomposition. , 2012, FEMS microbiology ecology.
[34] P. Reich,et al. Biomass allocation to leaves, stems and roots: meta-analyses of interspecific variation and environmental control. , 2012, The New phytologist.
[35] S. Mooney,et al. Developing X-ray Computed Tomography to non-invasively image 3-D root systems architecture in soil , 2011, Plant and Soil.
[36] L. Mommer,et al. Belowground DNA-based techniques: untangling the network of plant root interactions , 2011, Plant and Soil.
[37] S. Higgins,et al. TRY – a global database of plant traits , 2011, Global Change Biology.
[38] J. Cahill,et al. Independent Evolution of Leaf and Root Traits within and among Temperate Grassland Plant Communities , 2011, PloS one.
[39] E. Pendall,et al. Soil carbon storage under simulated climate change is mediated by plant functional type , 2011 .
[40] J. Hammond,et al. Phosphorus Nutrition: Rhizosphere Processes, Plant Response and Adaptations , 2011 .
[41] Benjamin L Turner,et al. Linkages of plant traits to soil properties and the functioning of temperate grassland , 2010 .
[42] H. Wickham,et al. Montane meadow change during drought varies with background hydrologic regime and plant functional group. , 2010, Ecology.
[43] P. Reich,et al. Ectomycorrhizal identity determines respiration and concentrations of nitrogen and non-structural carbohydrates in root tips: a test using Pinus sylvestris and Quercus robur saplings. , 2010, Tree physiology.
[44] Paul D. Hallett,et al. Planting density influence on fibrous root reinforcement of soils , 2010 .
[45] R. T. Belote,et al. CO2 enrichment accelerates successional development of an understory plant community , 2010 .
[46] Alexia Stokes,et al. Desirable plant root traits for protecting natural and engineered slopes against landslides , 2009, Plant and Soil.
[47] L. Comas,et al. Patterns in root trait variation among 25 co-existing North American forest species. , 2009, The New phytologist.
[48] Todd H. Oakley,et al. Using Phylogenetic, Functional and Trait Diversity to Understand Patterns of Plant Community Productivity , 2009, PloS one.
[49] J. Cornelissen,et al. Ecosystem feedbacks and cascade processes: understanding their role in the responses of Arctic and alpine ecosystems to environmental change , 2009 .
[50] T. Kuyper,et al. High turnover of fungal hyphae in incubation experiments. , 2009, FEMS microbiology ecology.
[51] D. Beerling,et al. Biological weathering and the long‐term carbon cycle: integrating mycorrhizal evolution and function into the current paradigm , 2009, Geobiology.
[52] Eric Garnier,et al. Leaf traits capture the effects of land use changes and climate on litter decomposability of grasslands across Europe. , 2009, Ecology.
[53] H. de Kroon,et al. Unravelling below‐ground plant distributions: a real‐time polymerase chain reaction method for quantifying species proportions in mixed root samples , 2008, Molecular ecology resources.
[54] Peter B Reich,et al. Scaling of respiration to nitrogen in leaves, stems and roots of higher land plants. , 2008, Ecology letters.
[55] P. Marquet,et al. A Significant Upward Shift in Plant Species Optimum Elevation During the 20th Century , 2008, Science.
[56] Steven W Kembel,et al. Improving the scale and precision of hypotheses to explain root foraging ability. , 2008, Annals of botany.
[57] J. Cornelissen,et al. Plant functional traits and soil carbon sequestration in contrasting biomes. , 2008, Ecology letters.
[58] H. Lambers,et al. Plant nutrient-acquisition strategies change with soil age. , 2008, Trends in ecology & evolution.
[59] P. Hallett,et al. Disentangling the impact of AM fungi versus roots on soil structure and water transport , 2008, Plant and Soil.
[60] S. Lavorel,et al. Incorporating plant functional diversity effects in ecosystem service assessments , 2007, Proceedings of the National Academy of Sciences.
[61] T. Fahey,et al. Fertilization effects on fineroot biomass, rhizosphere microbes and respiratory fluxes in hardwood forest soils. , 2007, The New phytologist.
[62] R. Conrad,et al. Impact of Plant Functional Group, Plant Species, and Sampling Time on the Composition of nirK-Type Denitrifier Communities in Soil , 2007, Applied and Environmental Microbiology.
[63] F. Zhang,et al. Diversity enhances agricultural productivity via rhizosphere phosphorus facilitation on phosphorus-deficient soils , 2007, Proceedings of the National Academy of Sciences.
[64] A. Knapp,et al. Soil water partitioning contributes to species coexistence in tallgrass prairie , 2007 .
[65] J. Sprent. Evolving ideas of legume evolution and diversity: a taxonomic perspective on the occurrence of nodulation. , 2007, The New phytologist.
[66] David S. Hik,et al. Responses of white spruce (Picea glauca) to experimental warming at a subarctic alpine treeline , 2007 .
[67] E. Paterson,et al. Rhizodeposition shapes rhizosphere microbial community structure in organic soil. , 2007, The New phytologist.
[68] P. Reich,et al. Tree species effects on decomposition and forest floor dynamics in a common garden. , 2006, Ecology.
[69] B. Hungate,et al. Ectomycorrhizal colonization slows root decomposition: the post-mortem fungal legacy. , 2006, Ecology letters.
[70] M. Rillig,et al. Mycorrhizas and soil structure , 2006 .
[71] J. Vivanco,et al. The role of root exudates in rhizosphere interactions with plants and other organisms. , 2006, Annual review of plant biology.
[72] S. Díaz,et al. Suites of root traits differ between annual and perennial species growing in the field. , 2006, The New phytologist.
[73] J. Six,et al. Bacterial and Fungal Contributions to Carbon Sequestration in Agroecosystems , 2006 .
[74] G. Walther,et al. Trends in the upward shift of alpine plants , 2005 .
[75] W. R. Whalley,et al. Structural differences between bulk and rhizosphere soil , 2005 .
[76] Jean Poesen,et al. Impact of plant roots on the resistance of soils to erosion by water: a review , 2005 .
[77] D. Beerling,et al. A humid climate state during the Palaeocene/Eocene thermal maximum , 2004, Nature.
[78] S. T. Gower,et al. A global relationship between the heterotrophic and autotrophic components of soil respiration? , 2004 .
[79] A. Hodge,et al. Plant and mycorrhizal regulation of rhizodeposition. , 2004, The New phytologist.
[80] Peter Millard,et al. Unravelling rhizosphere-microbial interactions: opportunities and limitations. , 2004, Trends in microbiology.
[81] D. Wardle,et al. Ecological Linkages Between Aboveground and Belowground Biota , 2004, Science.
[82] G. Taylor,et al. Species‐level effects more important than functional group‐level responses to elevated CO2: evidence from simulated turves , 2004 .
[83] Angela Hodge,et al. The plastic plant: root responses to heterogeneous supplies of nutrients , 2004 .
[84] Luc Abbadie,et al. Carbon input to soil may decrease soil carbon content , 2004 .
[85] D. White,et al. Determination of the sedimentary microbial biomass by extractible lipid phosphate , 2004, Oecologia.
[86] Chris A. Martin,et al. Interactive effects of temperature and arbuscular mycorrhizal fungi on growth, P uptake and root respiration of Capsicum annuum L. , 2004, Mycorrhiza.
[87] D. Rowland,et al. Nitrogen enrichment alters mycorrhizal allocation at five mesic to semiarid grasslands , 2003 .
[88] S. Bridgham,et al. Potential effects of warming and drying on peatland plant community composition , 2003 .
[89] P. Reich,et al. Functional traits, productivity and effects on nitrogen cycling of 33 grassland species , 2002 .
[90] Mark C. Brundrett,et al. Coevolution of roots and mycorrhizas of land plants. , 2002, The New phytologist.
[91] A. Hodge,et al. An arbuscular mycorrhizal fungus accelerates decomposition and acquires nitrogen directly from organic material , 2001, Nature.
[92] J A Raven,et al. Roots: evolutionary origins and biogeochemical significance. , 2001, Journal of experimental botany.
[93] R. B. Jackson,et al. A universal molecular method for identifying underground plant parts to species , 2000, Molecular ecology.
[94] P. Hallett,et al. Root‐ and microbial‐derived mucilages affect soil structure and water transport , 2000 .
[95] Charles T. Garten,et al. Separating root and soil microbial contributions to soil respiration: A review of methods and observations , 2000 .
[96] R. B. Jackson,et al. Ecosystem rooting depth determined with caves and DNA. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[97] K. Paustian,et al. Bacterial and Fungal Cell‐Wall Residues in Conventional and No‐Tillage Agroecosystems , 1999 .
[98] W. Schlesinger,et al. The global carbon dioxide flux in soil respiration and its relationship to vegetation and climate , 1992 .
[99] J F Reynolds,et al. Biological Feedbacks in Global Desertification , 1990, Science.