Decadal changes in fire frequencies shift tree communities and functional traits
暂无分享,去创建一个
R. B. Jackson | P. Reich | M. Turner | T. Schoennagel | C. Ryan | S. Hobbie | D. Brockway | K. Peay | C. Swanston | J. Varner | A. Staver | J. Kush | B. Scharenbroch | T. Lewis | G. R. Smith | W. Hoffmann | C. Terrer | C. Averill | J. Haywood | A. Caprio | W. K. Moser | A. Pellegrini | C. Coetsee | W. Clatterbuck | S. Overby | M. Sayer | T. Refsland | K. Stephan | Bill Patterson | Peter B. Reich
[1] R. B. Jackson,et al. Repeated Fire Shifts Carbon and Nitrogen Cycling by Changing Plant Inputs and Soil Decomposition Across Ecosystems , 2020, The Bulletin of the Ecological Society of America.
[2] C. Frankenberg,et al. Fire decline in dry tropical ecosystems enhances decadal land carbon sink , 2020, Nature Communications.
[3] T. Lewis. Very frequent burning encourages tree growth in sub-tropical Australian eucalypt forest , 2020 .
[4] P. Reich,et al. Frequent burning causes large losses of carbon from deep soil layers in a temperate savanna , 2020, Journal of Ecology.
[5] Dan K. Thompson,et al. Short-interval wildfire and drought overwhelm boreal forest resilience , 2019, Scientific Reports.
[6] A. Staver,et al. Severe drought limits trees in a semi-arid savanna. , 2019, Ecology.
[7] M. Dietze,et al. Global imprint of mycorrhizal fungi on whole-plant nutrient economics , 2019, Proceedings of the National Academy of Sciences of the United States of America.
[8] N. Picard,et al. Climatic controls of decomposition drive the global biogeography of forest-tree symbioses , 2019, Nature.
[9] Axel Meyer,et al. Asymmetric paralog evolution between the “cryptic” gene Bmp16 and its well-studied sister genes Bmp2 and Bmp4 , 2019, Scientific Reports.
[10] Sarah J. Hart,et al. Examining forest resilience to changing fire frequency in a fire‐prone region of boreal forest , 2019, Global change biology.
[11] A. Staver,et al. Prediction and scale in savanna ecosystems. , 2018, The New phytologist.
[12] Richard Inger,et al. A brief introduction to mixed effects modelling and multi-model inference in ecology , 2018, PeerJ.
[13] Arnaud Mialon,et al. Satellite passive microwaves reveal recent climate-induced carbon losses in African drylands , 2018, Nature Ecology & Evolution.
[14] G. Asner,et al. On the relationship between fire regime and vegetation structure in the tropics. , 2018, The New phytologist.
[15] J. Elser,et al. The phosphorus-rich signature of fire in the soil-plant system: a global meta-analysis. , 2018, Ecology letters.
[16] Dali Guo,et al. Evolutionary history resolves global organization of root functional traits , 2018, Nature.
[17] R. B. Jackson,et al. Fire frequency drives decadal changes in soil carbon and nitrogen and ecosystem productivity , 2017, Nature.
[18] J. Randerson,et al. Global fire emissions estimates during 1997–2016 , 2017 .
[19] J. Randerson,et al. A human-driven decline in global burned area , 2017, Science.
[20] Monica G. Turner,et al. Adapt to more wildfire in western North American forests as climate changes , 2017, Proceedings of the National Academy of Sciences.
[21] R. Pringle,et al. Woody plant biomass and carbon exchange depend on elephant‐fire interactions across a productivity gradient in African savanna , 2017 .
[22] Brian J. Harvey,et al. Changing disturbance regimes, ecological memory, and forest resilience , 2016 .
[23] C. Hawkes,et al. Ectomycorrhizal fungi slow soil carbon cycling. , 2016, Ecology letters.
[24] A. Pellegrini. Nutrient limitation in tropical savannas across multiple scales and mechanisms. , 2016, Ecology.
[25] D. Hibbett,et al. Ectomycorrhizal fungi decompose soil organic matter using oxidative mechanisms adapted from saprotrophic ancestors , 2015, The New phytologist.
[26] S. Fuhlendorf,et al. Thermal patterns constrain diurnal behavior of a ground-dwelling bird , 2015 .
[27] William D. Pearse,et al. Pez: Phylogenetics for the Environmental Sciences , 2015, Bioinform..
[28] Joe H. Scott,et al. Standard Fire Behavior Fuel Models: A Comprehensive Set for Use with Rothermel?s Surface Fire Spread Model , 2015 .
[29] S. Hobbie. Plant species effects on nutrient cycling: revisiting litter feedbacks. , 2015, Trends in ecology & evolution.
[30] Benjamin O. Knapp,et al. Structure and composition of an oak-hickory forest after over 60 years of repeated prescribed burning in Missouri, U.S.A , 2015 .
[31] A. Staver,et al. Fire alters ecosystem carbon and nutrients but not plant nutrient stoichiometry or composition in tropical savanna , 2015 .
[32] Matthew F. McCabe,et al. Recent reversal in loss of global terrestrial biomass , 2015 .
[33] A. Staver,et al. Fire alters ecosystem carbon and nutrients but not plant nutrient stoichiometry or composition in tropical savanna. , 2015, Ecology.
[34] Joshua H. Viers,et al. The fire frequency‐severity relationship and the legacy of fire suppression in California forests , 2015 .
[35] K. Robertson,et al. Frequent fire protects shortleaf pine (Pinus echinata) from introgression by loblolly pine (P. taeda) , 2015, Conservation Genetics.
[36] D. Bates,et al. Fitting Linear Mixed-Effects Models Using lme4 , 2014, 1406.5823.
[37] David C. Tank,et al. Three keys to the radiation of angiosperms into freezing environments , 2013, Nature.
[38] W. Hoffmann,et al. Carbon accumulation and nitrogen pool recovery during transitions from savanna to forest in central Brazil. , 2014, Ecology.
[39] Pierre Hiernaux,et al. Savanna Vegetation-Fire-Climate Relationships Differ Among Continents , 2014, Science.
[40] T. Swetnam,et al. Managing Forests and Fire in Changing Climates , 2013, Science.
[41] 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.
[42] T. Lewis,et al. Resilience of a eucalypt forest woody understorey to long-term (34-55 years) repeated burning in subtropical Australia , 2012 .
[43] J. Randerson,et al. Global burned area and biomass burning emissions from small fires , 2012 .
[44] T. Lewis,et al. The effect of long‐term repeated burning and fire exclusion on above‐ and below‐ground Blackbutt (Eucalyptus pilularis) forest vegetation assemblages , 2012 .
[45] S. Higgins,et al. Which traits determine shifts in the abundance of tree species in a fire‐prone savanna? , 2012 .
[46] B. Scharenbroch,et al. Two decades of low-severity prescribed fire increases soil nutrient availability in a Midwestern, USA oak (Quercus) forest , 2012 .
[47] S. Gotsch,et al. Ecological thresholds at the savanna-forest boundary: how plant traits, resources and fire govern the distribution of tropical biomes. , 2012, Ecology letters.
[48] S. Higgins,et al. Atmospheric CO2 forces abrupt vegetation shifts locally, but not globally , 2012, Nature.
[49] B. Bolker,et al. Fire‐induced tree mortality in a neotropical forest: the roles of bark traits, tree size, wood density and fire behavior , 2012 .
[50] Ryan J. Williams,et al. Frequency of prescribed burning in an upland oak forest determines soil and litter properties and alters the soil microbial community , 2012 .
[51] S. Levin,et al. The Global Extent and Determinants of Savanna and Forest as Alternative Biome States , 2011, Science.
[52] R. Marchin,et al. Hydraulic failure and tree dieback are associated with high wood density in a temperate forest under extreme drought , 2011 .
[53] Juli G Pausas,et al. Fire as an evolutionary pressure shaping plant traits. , 2011, Trends in plant science.
[54] M. G. Ryan,et al. Continued warming could transform Greater Yellowstone fire regimes by mid-21st century , 2011, Proceedings of the National Academy of Sciences.
[55] Casey M. Ryan,et al. Above‐ and Belowground Carbon Stocks in a Miombo Woodland Landscape of Mozambique , 2011 .
[56] S. Fuhlendorf,et al. Understory response to varying fire frequencies after 20 years of prescribed burning in an upland oak forest , 2011, Plant Ecology.
[57] Jon E. Keeley,et al. A comparison of effects from prescribed fires and wildfires managed for resource objectives in Sequoia and Kings Canyon National Parks , 2011 .
[58] M. Olson. Tree Regeneration in Oak-Pine Stands with and without Prescribed Fire in the New Jersey Pine Barrens: Management Implications , 2011 .
[59] S. Sackett,et al. Understory vegetation response after 30 years of interval prescribed burning in two ponderosa pine sites in northern Arizona, USA , 2010 .
[60] D. Peláez,et al. The influence of controlled fires on a plant community in the south of the Caldenal, and its relationship with a regional state and transition model. , 2010 .
[61] M. Turner. Disturbance and landscape dynamics in a changing world. , 2010, Ecology.
[62] Campbell O. Webb,et al. Picante: R tools for integrating phylogenies and ecology , 2010, Bioinform..
[63] Corinne Le Quéré,et al. Trends in the sources and sinks of carbon dioxide , 2009 .
[64] J. Chave,et al. Towards a Worldwide Wood Economics Spectrum 2 . L E a D I N G D I M E N S I O N S I N W O O D F U N C T I O N , 2022 .
[65] R. Julliard,et al. Establishment and early persistence of tree seedlings in an annually burned savanna , 2008 .
[66] F. Schmidt. Meta-Analysis , 2008 .
[67] W. A. Patterson,et al. Responses of soil carbon, nitrogen and cations to the frequency and seasonality of prescribed burning in a Cape Cod oak-pine forest , 2007 .
[68] Simon Scheiter,et al. Effects of four decades of fire manipulation on woody vegetation structure in Savanna. , 2007, Ecology.
[69] R. L. Stratton. Effects of Long-term Late Winter Prescribed Fire on Forest Stand Dynamics, Small Mammal Populations, and Habitat Demographics in a Tennessee Oak Barrens , 2007 .
[70] T. Swetnam,et al. Warming and Earlier Spring Increase Western U.S. Forest Wildfire Activity , 2006, Science.
[71] Bruce A. McCarl,et al. Trading Water for Carbon with Biological Carbon Sequestration , 2005, Science.
[72] J. L. Parra,et al. Very high resolution interpolated climate surfaces for global land areas , 2005 .
[73] F. Woodward,et al. The global distribution of ecosystems in a world without fire. , 2004, The New phytologist.
[74] John C. Z. Woinarski,et al. Response of vegetation and vertebrate fauna to 23 years of fire exclusion in a tropical Eucalyptus open forest, Northern Territory, Australia , 2004 .
[75] M. Harmon. Decomposition of standing dead trees in the southern Appalachian Mountains , 1982, Oecologia.
[76] M. Turner,et al. THE INFLUENCE OF FIRE INTERVAL AND SEROTINY ON POSTFIRE LODGEPOLE PINE DENSITY IN YELLOWSTONE NATIONAL PARK , 2003 .
[77] Jeremy Russell-Smith,et al. RESPONSE OF EUCALYPTUS‐DOMINATED SAVANNA TO FREQUENT FIRES: LESSONS FROM MUNMARLARY, 1973–1996 , 2003 .
[78] J. Pérez‐Moreno,et al. Mycorrhizas and nutrient cycling in ecosystems - a journey towards relevance? , 2003, The New phytologist.
[79] D. Wade,et al. Fire Frequency Effects on Longleaf Pine ( Pinus palustris P. Miller) Vegetation in South Carolina and Northeast Florida, USA , 2003 .
[80] J. Knops,et al. Mechanisms of plant species impacts on ecosystem nitrogen cycling , 2002 .
[81] J. Haywood,et al. Vegetative response to 37 years of seasonal burning on a Louisiana longleaf pine site , 2001 .
[82] P. Reich,et al. FIRE AND VEGETATION EFFECTS ON PRODUCTIVITY AND NITROGEN CYCLING ACROSS A FOREST-GRASSLAND CONTINUUM , 2001 .
[83] P. Reich,et al. PRESCRIBED FIRE IN OAK SAVANNA: FIRE FREQUENCY EFFECTS ON STAND STRUCTURE AND DYNAMICS , 2001 .
[84] P. Curtis,et al. Effects of Forest Management on Soil C and N Storage: Meta Analysis , 2001 .
[85] Zhihong Xu,et al. SOIL CHEMICAL PROPERTIES AND FOREST FLOOR NUTRIENTS UNDER REPEATED PRESCRIBED- BURNING IN EUCALYPT FORESTS OF SOUTH-EAST QUEENSLAND, AUSTRALIA , 2001 .
[86] W. Bond,et al. Ecology of sprouting in woody plants: the persistence niche. , 2001, Trends in ecology & evolution.
[87] David W. Peterson,et al. FIRE SUPPRESSION AND ECOSYSTEM CARBON STORAGE , 2000 .
[88] S. Higgins,et al. Fire, resprouting and variability: a recipe for grass–tree coexistence in savanna , 2000 .
[89] T. DeLuca,et al. Influence of fire on native nitrogen-fixing plants and soil nitrogen status in ponderosa pine - Douglas-fir forests in western Montana , 2000 .
[90] Jessica Gurevitch,et al. THE META‐ANALYSIS OF RESPONSE RATIOS IN EXPERIMENTAL ECOLOGY , 1999 .
[91] James F. Jackson,et al. Allometry of Constitutive Defense: A Model and a Comparative Test with Tree Bark and Fire Regime , 1999, The American Naturalist.
[92] Dale G. Brockway,et al. Long-term effects of dormant-season prescribed fire on plant community diversity, structure and productivity in a longleaf pine wiregrass ecosystem , 1997 .
[93] R. K. Dixon,et al. Carbon Pools and Flux of Global Forest Ecosystems , 1994, Science.
[94] Jessica Gurevitch,et al. A Meta-Analysis of Competition in Field Experiments , 1992, The American Naturalist.
[95] J. Kauffman,et al. Deforestation, Fire Susceptibility, and Potential Tree Responses to Fire in the Eastern Amazon , 1990 .
[96] R. J. Raison,et al. Transfer of elements to the atmosphere during low-intensity prescribed fires in three Australian subalpine eucalypt forests , 1985 .
[97] R. Whittaker,et al. GRADIENT ANALYSIS OF VEGETATION* , 1967, Biological reviews of the Cambridge Philosophical Society.