Multiple models and experiments underscore large uncertainty in soil carbon dynamics
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Jessica A. M. Moore | W. Wieder | A. Classen | M. Bradford | K. Georgiou | Yiqi Luo | W. Riley | B. Sulman | J. Schimel | M. Hartman | Jinyun Tang | Stephanie N. Kivlin | M. Mayes | C. Averill | Gangsheng Wang | R. Abramoff | B. Sridhar | E. Morrison | A. Salazar | J. Moore | Benjamin N. Sulman | William R. Wieder | S. Kivlin
[1] W. Horwath,et al. Microbial Biomass , 2018, SSSA Book Series.
[2] R. Vargas,et al. Globally rising soil heterotrophic respiration over recent decades , 2018, Nature.
[3] J. Six,et al. Links among warming, carbon and microbial dynamics mediated by soil mineral weathering , 2018, Nature Geoscience.
[4] G. Bonan,et al. Carbon cycle confidence and uncertainty: Exploring variation among soil biogeochemical models , 2018, Global change biology.
[5] P. Reich,et al. Predicting soil carbon loss with warming , 2018, Nature.
[6] W. Wieder,et al. Beyond clay: towards an improved set of variables for predicting soil organic matter content , 2018, Biogeochemistry.
[7] K. Todd-Brown,et al. Soil carbon cycling proxies: Understanding their critical role in predicting climate change feedbacks , 2017, Global change biology.
[8] B. Sulman,et al. Microbial dormancy promotes microbial biomass and respiration across pulses of drying-wetting stress , 2018 .
[9] T. Crowther,et al. A test of the hierarchical model of litter decomposition , 2017, Nature Ecology & Evolution.
[10] S. Frey,et al. Long-term pattern and magnitude of soil carbon feedback to the climate system in a warming world , 2017, Science.
[11] P. Thornton,et al. Global pattern and controls of soil microbial metabolic quotient , 2017 .
[12] J. Melillo,et al. Changes in substrate availability drive carbon cycle response to chronic warming , 2017 .
[13] Gordon B. Bonan,et al. Reducing uncertainty in projections of terrestrial carbon uptake , 2017 .
[14] S. Allison,et al. Soil microbes and their response to experimental warming over time: A meta-analysis of field studies , 2017 .
[15] N. Spycher,et al. Mineral properties, microbes, transport, and plant-input profiles control vertical distribution and age of soil carbon stocks , 2017 .
[16] Zhongkui Luo,et al. Uncertain future soil carbon dynamics under global change predicted by models constrained by total carbon measurements. , 2017, Ecological applications : a publication of the Ecological Society of America.
[17] C. Castanha,et al. The whole-soil carbon flux in response to warming , 2017, Science.
[18] T. Kätterer,et al. Sensitivity of soil carbon fractions and their specific stabilization mechanisms to extreme soil warming in a subarctic grassland , 2017, Global change biology.
[19] Y. Carrillo,et al. Faster turnover of new soil carbon inputs under increased atmospheric CO2 , 2016, Global change biology.
[20] 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.
[21] Y. Carrillo,et al. Faster turnover of new soil carbon inputs under increased atmospheric CO 2 Running Head : Soil carbon dynamics under elevated CO 2 , 2017 .
[22] E. Blagodatskaya,et al. How do microbial communities in top- and subsoil respond to root litter addition under field conditions? , 2016 .
[23] W. Wanek,et al. Little effects on soil organic matter chemistry of density fractions after seven years of forest soil warming , 2016, Soil biology & biochemistry.
[24] Bart R. Johnson,et al. Quantifying global soil carbon losses in response to warming , 2016, Nature.
[25] S. Frey,et al. Direct evidence for microbial-derived soil organic matter formation and its ecophysiological controls , 2016, Nature Communications.
[26] Bart R. Johnson,et al. Temperature response of soil respiration largely unaltered with experimental warming , 2016, Proceedings of the National Academy of Sciences.
[27] G. Bonan,et al. Managing uncertainty in soil carbon feedbacks to climate change , 2016 .
[28] Guoyi Zhou,et al. Potential effects of warming on soil respiration and carbon sequestration in a subtropical forest , 2016, Plant and Soil.
[29] K. Lajtha,et al. Asymmetric and symmetric warming increases turnover of litter and unprotected soil C in grassland mesocosms , 2016, Biogeochemistry.
[30] Ke Sun,et al. Some concepts of soil organic carbon characteristics and mineral interaction from a review of literature , 2016 .
[31] Jizhong Zhou,et al. Soil properties control decomposition of soil organic carbon: Results from data-assimilation analysis , 2016 .
[32] S. Frey,et al. Microbial physiology and necromass regulate agricultural soil carbon accumulation , 2015 .
[33] M. Kleber,et al. The contentious nature of soil organic matter , 2015, Nature.
[34] J. Six,et al. Soil carbon storage controlled by interactions between geochemistry and climate , 2015 .
[35] Yujie He,et al. Explicitly representing soil microbial processes in Earth system models , 2015 .
[36] J. Six,et al. Integrating plant litter quality, soil organic matter stabilization, and the carbon saturation concept , 2015, Global change biology.
[37] Q. Shao,et al. Convergent modelling of past soil organic carbon stocks but divergent projections , 2015 .
[38] E. Blagodatskaya,et al. Microbial hotspots and hot moments in soil: Concept & review , 2015 .
[39] J. Blanchard,et al. Long-term forest soil warming alters microbial communities in temperate forest soils , 2015, Front. Microbiol..
[40] William J. Riley,et al. Weaker soil carbon–climate feedbacks resulting from microbial and abiotic interactions , 2015 .
[41] Lianhong Gu,et al. Microbial dormancy improves development and experimental validation of ecosystem model , 2014, The ISME Journal.
[42] Richard P. Phillips,et al. Microbe-driventurnoverosetsminer al-mediated storage of soil carbon under elevated CO 2 , 2014 .
[43] William R. Wieder,et al. Integrating microbial physiology and physio-chemical principles in soils with the MIcrobial-MIneral Carbon Stabilization (MIMICS) model , 2014 .
[44] Dipankar Dwivedi,et al. Long residence times of rapidly decomposable soil organic matter: application of a multi-phase, multi-component, and vertically resolved model (BAMS1) to soil carbon dynamics , 2014 .
[45] S. Blagodatsky,et al. Microbial Growth and Carbon Use Efficiency in the Rhizosphere and Root-Free Soil , 2014, PloS one.
[46] K. Nadelhoffer,et al. Changes to particulate versus mineral-associated soil carbon after 50 years of litter manipulation in forest and prairie experimental ecosystems , 2014, Biogeochemistry.
[47] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[48] K. Nadelhoffer,et al. Litter and Root Manipulations Provide Insights into Soil Organic Matter Dynamics and Stability , 2014 .
[49] W. Riley,et al. A total quasi-steady-state formulation of substrate uptake kinetics in complex networks and an example application to microbial litter decomposition , 2013 .
[50] William R. Wieder,et al. Global soil carbon projections are improved by modelling microbial processes , 2013 .
[51] K. Denef,et al. The Microbial Efficiency‐Matrix Stabilization (MEMS) framework integrates plant litter decomposition with soil organic matter stabilization: do labile plant inputs form stable soil organic matter? , 2013, Global change biology.
[52] J. Six,et al. The temperature response of soil microbial efficiency and its feedback to climate , 2013 .
[53] W. Post,et al. Development of microbial-enzyme-mediated decomposition model parameters through steady-state and dynamic analyses. , 2013, Ecological applications : a publication of the Ecological Society of America.
[54] Eoin L. Brodie,et al. Rainfall-induced carbon dioxide pulses result from sequential resuscitation of phylogenetically clustered microbial groups , 2012, Proceedings of the National Academy of Sciences.
[55] Shinichi Nakagawa,et al. Methodological issues and advances in biological meta-analysis , 2012, Evolutionary Ecology.
[56] Francesca M. Hopkins,et al. A framework for representing microbial decomposition in coupled climate models , 2012, Biogeochemistry.
[57] C. Kallenbach,et al. Controls over soil microbial biomass responses to carbon amendments in agricultural systems: A meta-analysis , 2011 .
[58] M. G. Ryan,et al. Temperature and soil organic matter decomposition rates – synthesis of current knowledge and a way forward , 2011 .
[59] D. Manning,et al. Persistence of soil organic matter as an ecosystem property , 2011, Nature.
[60] L. Verchot,et al. Organic matter stabilization in soil aggregates: Understanding the biogeochemical mechanisms that determine the fate of carbon inputs in soils , 2011 .
[61] P. Sollins,et al. Old and stable soil organic matter is not necessarily chemically recalcitrant: implications for modeling concepts and temperature sensitivity , 2011 .
[62] J. Lennon,et al. Microbial seed banks: the ecological and evolutionary implications of dormancy , 2011, Nature Reviews Microbiology.
[63] Wolfgang Viechtbauer,et al. Conducting Meta-Analyses in R with the metafor Package , 2010 .
[64] Mark A. Bradford,et al. Soil-carbon response to warming dependent on microbial physiology , 2010 .
[65] Ben Bond-Lamberty,et al. Temperature-associated increases in the global soil respiration record , 2010, Nature.
[66] P. E T E,et al. Old and stable soil organic matter is not necessarily chemically recalcitrant : implications for modeling concepts and temperature sensitivity , 2010 .
[67] R. Bowden,et al. Increased coniferous needle inputs accelerate decomposition of soil carbon in an old-growth forest , 2009 .
[68] Shuijin Hu,et al. Enhanced litter input rather than changes in litter chemistry drive soil carbon and nitrogen cycles under elevated CO2: a microcosm study , 2009 .
[69] S. Frey,et al. Thermal adaptation of soil microbial respiration to elevated temperature. , 2008, Ecology letters.
[70] S. Frey,et al. Microbial biomass, functional capacity, and community structure after 12 years of soil warming , 2008 .
[71] Y. Kuzyakov,et al. Mechanisms of real and apparent priming effects and their dependence on soil microbial biomass and community structure: critical review , 2008, Biology and Fertility of Soils.
[72] Peter Finke,et al. Modelling soil genesis in calcareous loess , 2008 .
[73] J. Six,et al. Soil Carbon Saturation Controls Labile and Stable Carbon Pool Dynamics , 2008 .
[74] K. Paustian,et al. Soil carbon saturation: Linking concept and measurable carbon pools , 2008 .
[75] Georg Guggenberger,et al. Organo-mineral associations in temperate soils: Integrating biology, mineralogy, and organic matter chemistry , 2008 .
[76] J. Neff,et al. Carbon structure and enzyme activities in alpine and forest ecosystems , 2007 .
[77] Bernd Marschner,et al. SOM fractionation methods: Relevance to functional pools and to stabilization mechanisms , 2007 .
[78] S. Reed,et al. Biogeochemical consequences of rapid microbial turnover and seasonal succession in soil. , 2007, Ecology.
[79] J. Six,et al. Considering the influence of sequestration duration and carbon saturation on estimates of soil carbon capacity , 2007 .
[80] Rattan Lal,et al. Distribution of light and heavy fractions of soil organic carbon as related to land use and tillage practice , 2007 .
[81] C. Chenu,et al. Clay‐sized organo‐mineral complexes in a cultivation chronosequence: revisiting the concept of the ‘primary organo‐mineral complex’ , 2006 .
[82] H. Flessa,et al. Storage of organic carbon in aggregate and density fractions of silty soils under different types of land use , 2005 .
[83] J. Six,et al. Assessing the impact of land‐use change on soil C sequestration in agricultural soils by means of organic matter fractionation and stable C isotopes , 2003 .
[84] B. Christensen. Physical fractionation of soil and structural and functional complexity in organic matter turnover , 2001 .
[85] W. Horwath,et al. Decomposition of rice straw and microbial carbon use efficiency under different soil temperatures and moistures , 2000 .
[86] S Duval,et al. Trim and Fill: A Simple Funnel‐Plot–Based Method of Testing and Adjusting for Publication Bias in Meta‐Analysis , 2000, Biometrics.
[87] Jessica Gurevitch,et al. STATISTICAL ISSUES IN ECOLOGICAL META‐ANALYSES , 1999 .
[88] W. Parton,et al. DAYCENT and its land surface submodel: description and testing , 1998 .
[89] H. Poly,et al. Mineral control of soil organic carbon storage and turnover , 1997 .
[90] P. Vitousek,et al. Mineral control of soil organic carbon storage and turnover , 1997, Nature.
[91] D. Jenkinson,et al. RothC-26.3 - A Model for the turnover of carbon in soil , 1996 .
[92] Richard D. Boone,et al. Contributions of aboveground litter, belowground litter, and root respiration to total soil respiration in a temperate mixed hardwood forest , 1993 .
[93] D. Schimel,et al. Organic matter turnover in a sagebrush steppe landscape , 1989 .
[94] N. Clark,et al. Direct Evidence , 1934 .