Nitrogen availability increases in a tundra ecosystem during five years of experimental permafrost thaw
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M. Mack | M. Mauritz | S. Natali | E. Schuur | V. Salmon | G. Celis | Patrick Soucy
[1] G. Marion,et al. A meta-analysis of the response of soil respiration, net nitrogen mineralization, and aboveground plant growth to experimental ecosystem warming , 2001, Oecologia.
[2] S. Natali,et al. Old soil carbon losses increase with ecosystem respiration in experimentally thawed tundra , 2016 .
[3] Kiva L. Oken,et al. Increased wintertime CO2 loss as a result of sustained tundra warming , 2016 .
[4] D. Bates,et al. Linear Mixed-Effects Models using 'Eigen' and S4 , 2015 .
[5] Andreas Richter,et al. A pan‐Arctic synthesis of CH4 and CO2 production from anoxic soil incubations , 2015, Global change biology.
[6] M. Mauritz,et al. Experimental Warming Alters Productivity and Isotopic Signatures of Tundra Mosses , 2015, Ecosystems.
[7] D. Lawrence,et al. Permafrost carbon−climate feedback is sensitive to deep soil carbon decomposability but not deep soil nitrogen dynamics , 2015, Proceedings of the National Academy of Sciences.
[8] M. Mauritz,et al. Permafrost thaw and soil moisture driving CO2 and CH4 release from upland tundra , 2015 .
[9] Francisco R. Reyes,et al. Rapid Nutrient Release from Permafrost Thaw in Arctic Aquatic Ecosystems , 2015 .
[10] D. M. Lawrence,et al. Climate change and the permafrost carbon feedback , 2014, Nature.
[11] B. Elberling,et al. Improved Estimates Show Large Circumpolar Stocks of Permafrost Carbon While Quantifying Substantial Uncertainty Ranges and Identifying Remaining Data Gaps , 2014 .
[12] D. Bates,et al. Fitting Linear Mixed-Effects Models Using lme4 , 2014, 1406.5823.
[13] C. Addis. Effects of increased snow on growth and allocation patterns of Arctic plants , 2014 .
[14] S. Natali,et al. Permafrost degradation stimulates carbon loss from experimentally warmed tundra. , 2014, Ecology.
[15] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[16] S. Sistla,et al. Seasonal patterns of microbial extracellular enzyme activities in an arctic tundra soil: Identifying direct and indirect effects of long-term summer warming , 2013 .
[17] S. Natali,et al. Moisture drives surface decomposition in thawing tundra , 2013 .
[18] A. Leffler,et al. Long-term increases in snow pack elevate leaf N and photosynthesis in Salix arctica: responses to a snow fence experiment in the High Arctic of NW Greenland , 2013 .
[19] Joshua P. Schimel,et al. Long-term warming restructures Arctic tundra without changing net soil carbon storage , 2013, Nature.
[20] M. Hartmann,et al. Long-term warming alters the composition of Arctic soil microbial communities. , 2012, FEMS microbiology ecology.
[21] Kristopher D. Johnson,et al. Field information links permafrost carbon to physical vulnerabilities of thawing , 2012 .
[22] R. Aerts,et al. A frozen feast: thawing permafrost increases plant‐available nitrogen in subarctic peatlands , 2012 .
[23] M. Mack,et al. Nitrogen Isotope Patterns in Alaskan Black Spruce Reflect Organic Nitrogen Sources and the Activity of Ectomycorrhizal Fungi , 2012, Ecosystems.
[24] Susan M. Natali,et al. Increased plant productivity in Alaskan tundra as a result of experimental warming of soil and permafrost , 2012 .
[25] B. Bolker,et al. Incorporating spatial heterogeneity created by permafrost thaw into a landscape carbon estimate , 2012 .
[26] E. Schuur,et al. Holocene Carbon Stocks and Carbon Accumulation Rates Altered in Soils Undergoing Permafrost Thaw , 2011, Ecosystems.
[27] P. Ciais,et al. Permafrost carbon-climate feedbacks accelerate global warming , 2011, Proceedings of the National Academy of Sciences.
[28] M. Mack,et al. The Effects of Snow, Soil Microenvironment, and Soil Organic Matter Quality on N Availability in Three Alaskan Arctic Plant Communities , 2011, Ecosystems.
[29] S. Natali,et al. Effects of experimental warming of air, soil and permafrost on carbon balance in Alaskan tundra , 2011 .
[30] Sonja Wipf,et al. A review of snow manipulation experiments in Arctic and alpine tundra ecosystems , 2010 .
[31] E. Schuur,et al. Response of CO2 exchange in a tussock tundra ecosystem to permafrost thaw and thermokarst development , 2009 .
[32] Edward J. Hyer,et al. Late summer changes in burning conditions in the boreal regions and their implications for NOx and CO emissions from boreal fires , 2008 .
[33] John H. Bradford,et al. Sediment and nutrient delivery from thermokarst features in the foothills of the North Slope, Alaska: Potential impacts on headwater stream ecosystems , 2008 .
[34] J. Welker,et al. Climate and species affect fine root production with long-term fertilization in acidic tussock tundra near Toolik Lake, Alaska , 2007, Oecologia.
[35] M. Mack,et al. Plant Species Composition and Productivity following Permafrost Thaw and Thermokarst in Alaskan Tundra , 2007, Ecosystems.
[36] R. Ruess,et al. Contribution of winter processes to soil nitrogen flux in taiga forest ecosystems , 2006 .
[37] J. Hobbie,et al. 15N in symbiotic fungi and plants estimates nitrogen and carbon flux rates in Arctic tundra. , 2006, Ecology.
[38] M. Jorgenson,et al. Response of boreal ecosystems to varying modes of permafrost degradation , 2005 .
[39] M. Bret-Harte,et al. Vegetation responses in Alaskan arctic tundra after 8 years of a summer warming and winter snow manipulation experiment , 2005 .
[40] F. Chapin,et al. Ecosystem carbon storage in arctic tundra reduced by long-term nutrient fertilization , 2004, Nature.
[41] A. Michelsen,et al. Long‐term ecosystem level experiments at Toolik Lake, Alaska, and at Abisko, Northern Sweden: generalizations and differences in ecosystem and plant type responses to global change , 2004 .
[42] F. Chapin. Direct and indirect effects of temperature on arctic plants , 1983, Polar Biology.
[43] J. Colpaert,et al. Nitrogen availability and colonization by mycorrhizal fungi correlate with nitrogen isotope patterns in plants. , 2003, The New phytologist.
[44] F. Stuart Chapin,et al. Species composition interacts with fertilizer to control long-term change in tundra productivity , 2001 .
[45] V. Carey,et al. Mixed-Effects Models in S and S-Plus , 2001 .
[46] M. Sturm,et al. Climate change: Increasing shrub abundance in the Arctic , 2001, Nature.
[47] Jon Holmgren,et al. Snow-Shrub Interactions in Arctic Tundra: A Hypothesis with Climatic Implications , 2001 .
[48] A. Michelsen,et al. Effects of environmental perturbations on abundance of subarctic plants after three, seven and ten years of treatments , 2001 .
[49] D. Schimel,et al. Global patterns of terrestrial biological nitrogen (N2) fixation in natural ecosystems , 1999 .
[50] Vladimir E. Romanovsky,et al. Evidence for warming and thawing of discontinuous permafrost in Alaska , 1999 .
[51] T. Callaghan,et al. Responses of a subarctic dwarf shrub heath community to simulated environmental change , 1998 .
[52] G. Henry,et al. Open‐top designs for manipulating field temperature in high‐latitude ecosystems , 1997 .
[53] J. Welker,et al. Experimental manipulations of snow‐depth: effects on nutrient content of caribou forage , 1997 .
[54] F. Chapin,et al. Tundra Plant Uptake of Amino Acid and NH4+ Nitrogen in Situ: Plants Complete Well for Amino Acid N , 1996 .
[55] S. Hobbie,et al. Winter regulation of tundra litter carbon and nitrogen dynamics , 1996 .
[56] F. Stuart Chapin,et al. Responses of Arctic Tundra to Experimental and Observed Changes in Climate , 1995 .
[57] K. Nadelhoffer,et al. Measuring nutrient availability in arctic soils using ion exchange resins : a field test , 1994 .
[58] S. Hobbie. Effects of plant species on nutrient cycling. , 1992, Trends in ecology & evolution.
[59] Edward B. Rastetter,et al. Global Change and the Carbon Balance of Arctic EcosystemsCarbon/nutrient interactions should act as major constraints on changes in global terrestrial carbon cycling , 1992 .
[60] F. Chapin,et al. Production: Biomass Relationships and Element Cycling in Contrasting Arctic Vegetation Types , 1991 .
[61] J. Ehleringer,et al. Carbon Isotope Discrimination and Photosynthesis , 1989 .
[62] F. Chapin,et al. FACTORS LIMITING SEASONAL GROWTH AND PEAK BIOMASS ACCUMULATION IN ERIOPHORUM VAGINATUM IN ALASKAN TUSSOCK TUNDRA , 1986 .
[63] G. Farquhar,et al. Isotopic Composition of Plant Carbon Correlates With Water-Use Efficiency of Wheat Genotypes , 1984 .