The driving effect of nitrogen-related functional microorganisms under water and nitrogen addition on N2O emission in a temperate desert.
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Xuejun Liu | T. Misselbrook | Shaokun Wang | X. Zuo | Kaihui Li | Xiaoqing Cui | P. Yue
[1] Xuejun Liu,et al. Are annual nitrous oxide fluxes sensitive to warming and increasing precipitation in the Gurbantunggut Desert? , 2020, Land Degradation & Development.
[2] Xuejun Liu,et al. Fluxes of N2O, CH4 and soil respiration as affected by water and nitrogen addition in a temperate desert , 2019, Geoderma.
[3] Caroline A. Havrilla,et al. Divergent responses of nitrous oxide, methane and carbon dioxide exchange to pulses of nitrogen addition in a desert in Central Asia , 2019, CATENA.
[4] S. Niu,et al. Environmental variables better explain changes in potential nitrification and denitrification activities than microbial properties in fertilized forest soils. , 2019, The Science of the total environment.
[5] Jinzhi Ding,et al. Linkage of plant and abiotic properties to the abundance and activity of N-cycling microbial communities in Tibetan permafrost-affected regions , 2018, Plant and Soil.
[6] Yi Liu,et al. Abundance of transcripts of functional gene reflects the inverse relationship between CH4 and N2O emissions during mid-season drainage in acidic paddy soil , 2018, Biology and Fertility of Soils.
[7] J. Grace,et al. Effects of precipitation exclusion on N2O emissions in a savanna ecosystem in SW China , 2018, Atmospheric Environment.
[8] D. Stahl,et al. Ammonia‐oxidizing bacteria are the primary N2O producers in an ammonia‐oxidizing archaea dominated alkaline agricultural soil , 2018, Environmental microbiology.
[9] Gang Huang,et al. Photodegradation effects are related to precipitation amount, precipitation frequency and litter traits in a desert ecosystem , 2017 .
[10] Xuejun Liu,et al. Impacts of water and nitrogen addition on nitrogen recovery in Haloxylon ammodendron dominated desert ecosystems. , 2017, The Science of the total environment.
[11] Keith Goulding,et al. Impact of elevated precipitation, nitrogen deposition and warming on soil respiration in a temperate desert , 2017 .
[12] Yanfen Wang,et al. Mixed grazing and clipping is beneficial to ecosystem recovery but may increase potential N2O emissions in a semi-arid grassland , 2017 .
[13] Jiabao Li,et al. Scale-dependent key drivers controlling methane oxidation potential in Chinese grassland soils , 2017 .
[14] W. Shen,et al. Soil nitrogen transformation responses to seasonal precipitation changes are regulated by changes in functional microbial abundance in a subtropical forest , 2017 .
[15] Yongchao Liang,et al. The response patterns of community traits of N2O emission-related functional guilds to temperature across different arable soils under inorganic fertilization , 2017 .
[16] Nan Wang,et al. Contrasting effects of nitrogen forms and soil pH on ammonia oxidizing microorganisms and their responses to long-term nitrogen fertilization in a typical steppe ecosystem , 2017 .
[17] Q. Shen,et al. Microbial Abundances Predict Methane and Nitrous Oxide Fluxes from a Windrow Composting System , 2017, Front. Microbiol..
[18] Precipitation Pattern Determines the Inter-annual Variation of Herbaceous Layer and Carbon Fluxes in a Phreatophyte-Dominated Desert Ecosystem , 2016, Ecosystems.
[19] Yun-she Dong,et al. Response of N2O emission to water and nitrogen addition in temperate typical steppe soil in Inner Mongolia, China , 2015 .
[20] Geping Luo,et al. Carbon stock and its responses to climate change in Central Asia , 2015, Global change biology.
[21] F. M. Padilla,et al. Ephemeral plants mediate responses of ecosystem carbon exchange to increased precipitation in a temperate desert , 2015 .
[22] F. Garcia-Pichel,et al. Ammonia-oxidizing archaea respond positively to inorganic nitrogen addition in desert soils. , 2015, FEMS microbiology ecology.
[23] Ke Li,et al. Spatial distribution of microbial communities associated with dune landform in the Gurbantunggut Desert, China , 2014, Journal of Microbiology.
[24] S. Billings,et al. Warming-induced enhancement of soil N2O efflux linked to distinct response times of genes driving N2O production and consumption , 2014, Biogeochemistry.
[25] Keith Goulding,et al. Enhanced nitrogen deposition over China , 2013, Nature.
[26] S. Marhan,et al. Effects of drought and N-fertilization on N cycling in two grassland soils , 2013, Oecologia.
[27] Qing Chen,et al. Effects of increasing precipitation and nitrogen deposition on CH4 and N2O fluxes and ecosystem respiration in a degraded steppe in Inner Mongolia, China , 2013 .
[28] Ji‐Zheng He,et al. Current insights into the autotrophic thaumarchaeal ammonia oxidation in acidic soils , 2012 .
[29] Ji‐Zheng He,et al. Ammonia-oxidizing archaea have more important role than ammonia-oxidizing bacteria in ammonia oxidation of strongly acidic soils , 2011, The ISME Journal.
[30] L. Hutley,et al. Land use change and the impact on greenhouse gas exchange in north Australian savanna soils , 2011 .
[31] J. Prosser,et al. Ammonia concentration determines differential growth of ammonia-oxidising archaea and bacteria in soil microcosms , 2011, The ISME Journal.
[32] Ji‐Zheng He,et al. Ammonia-oxidizing bacteria and archaea grow under contrasting soil nitrogen conditions. , 2010, FEMS microbiology ecology.
[33] Senjie Lin,et al. Serious Overestimation in Quantitative PCR by Circular (Supercoiled) Plasmid Standard: Microalgal pcna as the Model Gene , 2010, PloS one.
[34] Ge Gao,et al. Simulation of regional temperature and precipitation in the past 50 years and the next 30 years over China , 2010 .
[35] A. Ravishankara,et al. Nitrous Oxide (N2O): The Dominant Ozone-Depleting Substance Emitted in the 21st Century , 2009, Science.
[36] Maureen O’Callaghan,et al. Nitrification driven by bacteria and not archaea in nitrogen-rich grassland soils , 2009 .
[37] J. Prosser,et al. Relative contributions of archaea and bacteria to aerobic ammonia oxidation in the environment. , 2008, Environmental microbiology.
[38] Gerhard Gebauer,et al. Drought turns a Central European Norway spruce forest soil from an N2O source to a transient N2O sink , 2008 .
[39] Yuesi Wang,et al. Quantification of N2O fluxes from soil–plant systems may be biased by the applied gas chromatograph methodology , 2008, Plant and Soil.
[40] J. Galloway,et al. Transformation of the Nitrogen Cycle: Recent Trends, Questions, and Potential Solutions , 2008, Science.
[41] Youchao Chen,et al. Microbiotic crusts and their interrelations with environmental factors in the Gurbantonggut desert, western China , 2007 .
[42] D. B. Nedwell,et al. Diversity and Abundance of Nitrate Reductase Genes (narG and napA), Nitrite Reductase Genes (nirS and nrfA), and Their Transcripts in Estuarine Sediments , 2007, Applied and Environmental Microbiology.
[43] T. Urich,et al. Archaea predominate among ammonia-oxidizing prokaryotes in soils , 2006, Nature.
[44] David L. Jones,et al. Experimental evaluation of methods to quantify dissolved organic nitrogen (DON) and dissolved organic carbon (DOC) in soil , 2006 .
[45] L. Philippot,et al. Frequency and Diversity of Nitrate Reductase Genes among Nitrate-Dissimilating Pseudomonas in the Rhizosphere of Perennial Grasses Grown in Field Conditions , 2005, Microbial Ecology.
[46] M. Adams. Ecological issues related to N deposition to natural ecosystems: research needs. , 2003, Environment international.
[47] S. Schaeffer,et al. Trace N gas losses and N mineralization in Mojave desert soils exposed to elevated CO2. , 2002 .
[48] G. Kowalchuk,et al. Ammonia-oxidizing bacteria: a model for molecular microbial ecology. , 2001, Annual review of microbiology.
[49] M. Wagner,et al. Phylogeny of All Recognized Species of Ammonia Oxidizers Based on Comparative 16S rRNA and amoA Sequence Analysis: Implications for Molecular Diversity Surveys , 2000, Applied and Environmental Microbiology.
[50] W. Zumft. Cell biology and molecular basis of denitrification. , 1997, Microbiology and molecular biology reviews : MMBR.
[51] P. Brookes. Microbial biomass and activity measurements in soil , 1985 .