Organic nitrogen uptake by plants: reevaluation by position-specific labeling of amino acids
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[1] E. Blagodatskaya,et al. Microbial hotspots and hot moments in soil: Concept & review , 2015 .
[2] N. Nunan,et al. Isothermal microcalorimetry provides new insight into terrestrial carbon cycling. , 2014, Environmental science & technology.
[3] L. Wegner. Root pressure and beyond: energetically uphill water transport into xylem vessels? , 2014, Journal of experimental botany.
[4] Y. Kuzyakov,et al. Biochemical pathways of amino acids in soil: Assessment by position-specific labeling and 13C-PLFA analysis , 2013 .
[5] M. Fan,et al. Microbial response to rhizodeposition depending on water regimes in paddy soils , 2013 .
[6] Y. Kuzyakov,et al. Biogeochemical transformations of amino acids in soil assessed by position-specific labelling , 2013, Plant and Soil.
[7] Y. Kuzyakov,et al. Phosphorus mineralization can be driven by microbial need for carbon , 2013 .
[8] Xingliang Xu,et al. Competition between roots and microorganisms for nitrogen: mechanisms and ecological relevance. , 2013, The New phytologist.
[9] T. Lonhienne,et al. Past, present and future of organic nutrients , 2012, Plant and Soil.
[10] Davey L. Jones,et al. Microbial and plant uptake of free amino sugars in grassland soils , 2012 .
[11] C. Warren. Post-uptake metabolism affects quantification of amino acid uptake. , 2012, The New phytologist.
[12] V. Kitunen,et al. Proteoid Roots and Exudation of Proteases by Plant Roots , 2012 .
[13] C. Werner,et al. Diel variations in the carbon isotope composition of respired CO(2) and associated carbon sources: a review of dynamics and mechanisms , 2011 .
[14] Paul Dijkstra,et al. Modeling soil metabolic processes using isotopologue pairs of position-specific 13C-labeled glucose and pyruvate , 2011 .
[15] M. Delgado‐Baquerizo,et al. Dissolved Organic Nitrogen in Mediterranean Ecosystems , 2011 .
[16] H. Ryšlavá,et al. What can enzymes of C₄ photosynthesis do for C₃ plants under stress? , 2011, Plant science : an international journal of experimental plant biology.
[17] C. Werner,et al. Dynamic niche sharing in dry acidic grasslands -a 15N-labeling experiment , 2011, Plant and Soil.
[18] Wei Zhang,et al. Differentiating the dynamics of native and newly immobilized amino sugars in soil frequently amended with inorganic nitrogen and glucose , 2011 .
[19] Lianhai Wu,et al. Models of Biological Nitrogen Fixation of Legumes , 2011 .
[20] B. Hungate,et al. Probing carbon flux patterns through soil microbial metabolic networks using parallel position-specific tracer labeling , 2011 .
[21] J. Hobbie,et al. Amino acid cycling in plankton and soil microbes studied with radioisotopes: measured amino acids in soil do not reflect bioavailability , 2012, Biogeochemistry.
[22] G. Guggenberger,et al. Fate of ammonium 15N in a Norway spruce forest under long-term reduction in atmospheric N deposition , 2012, Biogeochemistry.
[23] W. Wanek,et al. Dominant plant species shift their nitrogen uptake patterns in response to nutrient enrichment caused by a fungal fairy in an alpine meadow , 2011, Plant and Soil.
[24] C. Werner,et al. The magnitude of diurnal variation in carbon isotopic composition of leaf dark respired CO2 correlates with the difference between δ13C of leaf and root material , 2010 .
[25] Y. Kuzyakov,et al. Microbial uptake of low‐molecular‐weight organic substances out‐competes sorption in soil , 2010 .
[26] B. Mckillican,et al. 10th international symposium on the synthesis and applications of isotopes and isotopically labelled compounds—applications of isotopes in agriculture, nutrition and environmental research Session 11, Wednesday, June 17, 2009 , 2010 .
[27] J. Eriksen,et al. Plant uptake of dual-labeled organic N biased by inorganic C uptake: Results of a triple labeling study , 2010 .
[28] G. Neumann,et al. Rhizodeposition of maize: Short-term carbon budget and composition , 2010 .
[29] Y. Kuzyakov,et al. Sorption, microbial uptake and decomposition of acetate in soil: transformations revealed by position-specific 14C labeling. , 2010 .
[30] Y. Kuzyakov,et al. Respiration costs associated with nitrate reduction as estimated by 14CO2 pulse labeling of corn at various growth stages , 2010, Plant and Soil.
[31] A. Weigelt,et al. Advantages of compound-specific stable isotope measurements over bulk measurements in studies on plant uptake of intact amino acids. , 2009, Rapid communications in mass spectrometry : RCM.
[32] Davey L. Jones,et al. Amino acids as a nitrogen source for tomato seedlings: the use of dual-labeled (13C, 15N) glycine to test for direct uptake by tomato seedlings. , 2009 .
[33] A. Weigelt,et al. Uptake of intact amino acids by plants depends on soil amino acid concentrations , 2009 .
[34] C. Warren. Does nitrogen concentration affect relative uptake rates of nitrate, ammonium, and glycine? , 2009 .
[35] Y. Kuzyakov,et al. Contrasting effects of glucose, living roots and maize straw on microbial growth kinetics and substrate availability in soil , 2009 .
[36] Davey L. Jones,et al. Carbon flow in the rhizosphere: carbon trading at the soil–root interface , 2009, Plant and Soil.
[37] Y. Kuzyakov,et al. Ammonium versus nitrate nutrition of Zea mays and Lupinus albus: Effect on root-derived CO2 efflux , 2008 .
[38] Y. Kuzyakov,et al. Root uptake of N-containing and N-free low molecular weight organic substances by maize: a 14C/15N tracer study , 2008 .
[39] Davey L. Jones,et al. Influence of inorganic and organic nitrogen on enzymes of nitrogen assimilation and growth in tomato seedlings , 2008 .
[40] Davey L. Jones,et al. Free amino sugar reactions in soil in relation to soil carbon and nitrogen cycling , 2007 .
[41] J. Kranabetter,et al. Indices of dissolved organic nitrogen, ammonium and nitrate across productivity gradients of boreal forests , 2007 .
[42] Y. Kuzyakov,et al. Carbohydrate and amino acid composition of dissolved organic matter leached from soil , 2007 .
[43] B. Adamczyk,et al. The ability of plants to secrete proteases by roots. , 2007, Plant physiology and biochemistry : PPB.
[44] F. Maathuis,et al. Physiological roles of nonselective cation channels in plants: from salt stress to signalling and development. , 2007, The New phytologist.
[45] C. Bellini,et al. Comprehensive Screening of Arabidopsis Mutants Suggests the Lysine Histidine Transporter 1 to Be Involved in Plant Uptake of Amino Acids1[W] , 2007, Plant Physiology.
[46] K. Huss-Danell,et al. Characteristics of amino acid uptake in barley , 2007, Plant and Soil.
[47] Christian Hermans,et al. How do plants respond to nutrient shortage by biomass allocation? , 2006, Trends in plant science.
[48] David L. Jones,et al. Experimental evaluation of methods to quantify dissolved organic nitrogen (DON) and dissolved organic carbon (DOC) in soil , 2006 .
[49] Davey L. Jones,et al. Glucose uptake by maize roots and its transformation in the rhizosphere , 2006 .
[50] B. Fry. Stable Isotope Ecology , 2006 .
[51] H. Hawkins,et al. Cluster roots of Leucadendron laureolum (Proteaceae) and Lupinus albus (Fabaceae) take up glycine intact: an adaptive strategy to low mineral nitrogen in soils? , 2005, Annals of botany.
[52] B. Glaser. Compound-specific stable-isotope (δ13C) analysis in soil science , 2005 .
[53] S. Cuttle,et al. Rapid intrinsic rates of amino acid biodegradation in soils are unaffected by agricultural management strategy , 2005 .
[54] A. Hodge,et al. Dissolved organic nitrogen uptake by plants—an important N uptake pathway? , 2005 .
[55] J. Farrar,et al. Plant capture of free amino acids is maximized under high soil amino acid concentrations , 2005 .
[56] David L. Jones,et al. The carbon we do not see : The impact of low molecular weight compounds on carbon dynamics and respiration in forest soils - A review , 2005 .
[57] A. Weigelt,et al. Preferential uptake of soil nitrogen forms by grassland plant species , 2005, Oecologia.
[58] D. Murphy,et al. Role of dissolved organic nitrogen (DON) in soil N cycling in grassland soils , 2004 .
[59] S. Jeffery,et al. Cluster-root production and organic anion exudation in a group of old-world lupins and a new-world lupin , 2004, Plant and Soil.
[60] A. Weigelt,et al. Inter-specific variability in organic nitrogen uptake of three temperate grassland species. , 2003 .
[61] M. Cabrera,et al. Impact of conventional and no-tillage management on soil amino acids, stable and transient radicals and properties of humic and fulvic acids , 2003 .
[62] Richard D. Bardgett,et al. SOIL MICROBES COMPETE EFFECTIVELY WITH PLANTS FOR ORGANIC‐NITROGEN INPUTS TO TEMPERATE GRASSLANDS , 2003 .
[63] David L. Jones,et al. Biodegradation of low molecular weight organic acids in coniferous forest podzolic soils , 2002 .
[64] M. Okamoto,et al. The regulation of nitrate and ammonium transport systems in plants. , 2002, Journal of experimental botany.
[65] T. Näsholm,et al. A GC-MS method for determination of amino acid uptake by plants. , 2001, Physiologia plantarum.
[66] P. Högberg,et al. Uptake of glycine by field grown wheat , 2001 .
[67] T. Näsholm,et al. Plant acquisition of organic nitrogen in boreal forests. , 2001, Physiologia plantarum.
[68] S. Tyerman,et al. Ammonia and amino acid transport across symbiotic membranes in nitrogen-fixing legume nodules , 2001, Cellular and Molecular Life Sciences CMLS.
[69] R. Tischner. Nitrate uptake and reduction in higher and lower plants , 2000 .
[70] R. Bol,et al. Amino acids as a nitrogen source in temperate upland grasslands: the use of dual labelled ((13)C, (15)N) glycine to test for direct uptake by dominant grasses. , 2000, Rapid communications in mass spectrometry : RCM.
[71] A. Hodge,et al. Are microorganisms more effective than plants at competing for nitrogen? , 2000, Trends in plant science.
[72] R. Bol,et al. Natural 13C abundance: a tool to trace the incorporation of dung-derived carbon into soil particle-size fractions. , 1999, Rapid communications in mass spectrometry : RCM.
[73] R. Monson,et al. Variation in competitive abilities of plants and microbes for specific amino acids , 1999, Biology and Fertility of Soils.
[74] Davey L. Jones. Amino acid biodegradation and its potential effects on organic nitrogen capture by plants , 1999 .
[75] P. Goupil,et al. Influence of ABA on nitrate reductase activity and carbohydrate metabolism in chicory roots (Cichorium intybus L.) , 1998 .
[76] Kawak Ijen Volcano,et al. Boreal forest plants take up organic nitrogen , 1998 .
[77] G. Likens,et al. Technical Report: Human Alteration of the Global Nitrogen Cycle: Sources and Consequences , 1997 .
[78] W. Parton,et al. Agricultural intensification and ecosystem properties. , 1997, Science.
[79] J. Morot-Gaudry,et al. Nitrate (15NO3) limitation affects nitrogen partitioning between metabolic and storage sinks and nitrogen reserve accumulation in chicory (Cichorium intybus L.) , 1997, Planta.
[80] F. Chapin,et al. Tundra Plant Uptake of Amino Acid and NH4+ Nitrogen in Situ: Plants Complete Well for Amino Acid N , 1996 .
[81] V. Kuzyakov. Transformation of Low-Molecular Nitrogen-Containing Compounds in Soil , 1996 .
[82] F. Chapin,et al. Preferential use of organic nitrogen for growth by a non-mycorrhizal arctic sedge , 1993, Nature.
[83] P. Vitousek,et al. Nitrate Losses from Disturbed Ecosystems , 1979, Science.