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2012, Cadmium and Zn availability as affected by pH manipulation and its assessment by soil extraction, DGT and indicator plants, Sci Total Environ, 416, 490, 10.1016\u002Fj.scitotenv.2011.11.029\nNaidu, 1994, Ionicstrength and pH effects on the sorption of cadmium and the surface charge of soils, Eur J Soil Sci, 45, 419, 10.1111\u002Fj.1365-2389.1994.tb00527.x\nNolan, 2005, Prediction of zinc, cadmium, lead, and copper availability to wheat in contaminated soils using chemical speciation, diffusive gradients in thin films, extraction, and isotopic dilution techniques, J Environ Qual, 34, 496, 10.2134\u002Fjeq2005.0496\nÖborn, 1995, A field study on the influence of soil pH on trace element levels in spring wheat (Triticum aestivum), potatoes (Solanum tuberosum) and carrots (Daucus carota), Water Air Soil Poll, 85, 835, 10.1007\u002FBF00476933\nPérez, 2009, DGT estimates cadmium accumulation in wheat and potato from phosphate fertilizer applications, Sci Total Environ, 407, 5096, 10.1016\u002Fj.scitotenv.2009.05.045\nQiu, 2012, Attenuation of metal bioavailability in acidic multi-metal contaminated soil treated with fly ash and steel slag, Pedosphere, 22, 544, 10.1016\u002FS1002-0160(12)60039-3\nSenila, 2012, Assessment of metals bioavailability to vegetables under field conditions using DGT, single extractions and multivariate statistics, Chem Cent J, 6, 119, 10.1186\u002F1752-153X-6-119\nSochaczewski, 2007, 2D DGT induced fluxes in sediments and soils (2D DIFS), Environ Modell Softw, 22, 14, 10.1016\u002Fj.envsoft.2005.09.008\nSong, 2013, Fungal inoculation and elevated CO2 mediate growth of Lolium mutiforum and Phytolacca americana, metal uptake, and metal bioavailability in metal-contaminated soil: Evidence from DGT measurement, Int J Phytoremediation, 15, 268, 10.1080\u002F15226514.2012.694500\nSumner, 1996, Cation exchange capacity and exchange coefficients, 1201\nTian, 2008, Evaluation of holistic approaches to predicting the concentrations of metals in 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management enhances mycorrhizal respiration but decreases free-living microbial respiration through its effect on microbial abundance and community in Moso bamboo forests",{"VOID":1187},"[\"772813632507327474\"]",{"VOID":1189},"Ameloot, 2014, C mineralization and microbial activity in four biochar field experiments several years after incorporation, Soil Biol Biochem, 78, 195, 10.1016\u002Fj.soilbio.2014.08.004\nBastian, 2009\nBaum, 2018, Mixture of salix genotypes promotes root colonization with dark septate endophytes and changes p cycling in the mycorrhizosphere, Front Microbiol, 9, 10.3389\u002Ffmicb.2018.01012\nBenjamin, 2010, Deciphering the relative contributions of multiple functions within plant-microbe symbioses, Ecology, 91, 1591, 10.1890\u002F09-1858.1\nBray, 1945, Determination of total, organic, and available forms of phosphorus in soils, Soil Sci, 59, 39, 10.1097\u002F00010694-194501000-00006\nBunn, 2009, Arbuscular mycorrhizal fungi ameliorate temperature stress in thermophilic plants, Ecology, 90\nBunn, 2019, Revisiting the ‘direct mineral cycling’ hypothesis: Arbuscular mycorrhizal fungi colonize leaf litter, but why?, ISME J, 13, 1891, 10.1038\u002Fs41396-019-0403-2\nCaporaso, 2010, Qiime allows analysis of high-throughput community sequencing data, Nat Methods, 10.1038\u002Fnmeth.f.303\nCaporaso, 2011, Global patterns of 16s rRNA diversity at a depth of millions of sequences per sample, P Natl Acad Sci USA, 108, 4516, 10.1073\u002Fpnas.1000080107\nCorrales, 2017, Nitrogen addition alters ectomycorrhizal fungal communities and soil enzyme activities in a tropical montane forest, Fungal Ecol, 27, 14, 10.1016\u002Fj.funeco.2017.02.004\nChen, 2015, Biotic community shifts explain the contrasting responses of microbial and root respiration to experimental soil acidification, Soil Biol Biochem, 90, 139, 10.1016\u002Fj.soilbio.2015.08.009\nChen, 2019, Diversity and function of soil bacterial communities in response to long-term intensive management in a subtropical bamboo forest, Geoderma, 354, 10.1016\u002Fj.geoderma.2019.113894\nChen, 2021, Linkages between soil respiration and microbial communities following afforestation of alpine grasslands in the northeastern tibetan plateau, Appl Soil Ecol, 161, 10.1016\u002Fj.apsoil.2021.103882\nClarke, 1988, Statistical design and analysis for a ‘biological effects’ study, Mar Ecol, 46, 213, 10.3354\u002Fmeps046213\nDrigo, 2010, Shifting carbon flow from roots into associated microbial communities in response to elevated atmospheric CO2, P Natl Acad Sci USA, 107, 10938, 10.1073\u002Fpnas.0912421107\nGarrido, 2010, Variation in arbuscular mycorrhizal fungi colonization modifies the expression of tolerance to aboveground defoliation, J Ecol, 98, 43, 10.1111\u002Fj.1365-2745.2009.01586.x\nHeinemeyer, 2012, The ‘gas-snake’: Design and validation of a versatile membrane-based gas flux measurement system in a grassland soil respiration study, Agr Forest Meteorol, 154-155, 166, 10.1016\u002Fj.agrformet.2011.10.017\nHu, 2018, Soil autotrophic and heterotrophic respiration respond differently to land-use change and variations in environmental factors, Agr Forest Meteorol, 250-251, 290, 10.1016\u002Fj.agrformet.2018.01.003\nJansa, 2013, Mycorrhizal hyphae as ecological niche for highly specialized hypersymbionts – or just soil free-riders?, Front Plant Sci, 4, 10.3389\u002Ffpls.2013.00134\nKelting, 1998, Estimating root respiration, microbial respiration in the rhizosphere, and root-free soil respiration in forest soils, Soil Biol Biochem, 30, 961, 10.1016\u002FS0038-0717(97)00186-7\nKennedy, 2004, Impact of lime, nitrogen and plant species on bacterial community structure in grassland microcosms, Environ Microbiol, 6, 1070, 10.1111\u002Fj.1462-2920.2004.00638.x\nLal, 2004, Carbon sequestration in dryland ecosystems, Environ Manage, 33, 528, 10.1007\u002Fs00267-003-9110-9\nLi, 2019, Nitrogen depositions increase soil respiration and decrease temperature 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tropical forest, New Phytol, 186, 957, 10.1111\u002Fj.1469-8137.2010.03226.x\nPaterson, 2016, Arbuscular mycorrhizal hyphae promote priming of native soil organic matter mineralisation, Plant Soil, 408, 243, 10.1007\u002Fs11104-016-2928-8\nPeng, 2008, Forest management and soil respiration: Implications for carbon sequestration, Environ Rev, 16, 93, 10.1139\u002FA08-003\nPol, 2007, Methanotrophy below ph 1 by a new verrucomicrobia species, Nature, 450, 874, 10.1038\u002Fnature06222\nQin, 2017, Intensive management decreases soil aggregation and changes the abundance and community compositions of arbuscular mycorrhizal fungi in moso bamboo (Phyllostachys pubescens.) forests, Forest Ecol Manag, 400, 246, 10.1016\u002Fj.foreco.2017.06.003\nQin, 2014, Rapid soil fungal community response to intensive management in a bamboo forest developed from rice paddies, Soil Biol Biochem, 68, 177, 10.1016\u002Fj.soilbio.2013.09.031\nSato, 2005, A new primer for discrimination of arbuscular mycorrhizal fungi with polymerase chain reaction-denature gradient gel electrophoresis, Grassl Sci, 51, 179, 10.1111\u002Fj.1744-697X.2005.00023.x\nShi, 2016, The interconnected rhizosphere: High network complexity dominates rhizosphere assemblages, Ecol Lett, 19, 926, 10.1111\u002Fele.12630\nShi, 2018, Plant roots alter microbial functional genes supporting root litter decomposition, Soil Biol Biochem, 127, 90, 10.1016\u002Fj.soilbio.2018.09.013\nShinohara, 2015, Comparisons of soil-water content between a moso bamboo (Phyllostachys pubescens) forest and an evergreen broadleaved forest in western japan, Plant Spec Biol, 30, 96, 10.1111\u002F1442-1984.12076\nSun, 2015, Bacterial diversity in soils subjected to long-term chemical fertilization can be more stably maintained with the addition of livestock manure than wheat straw, Soil Biol Biochem, 88, 9, 10.1016\u002Fj.soilbio.2015.05.007\nTalbot, 2008, Decomposers in disguise: Mycorrhizal fungi as regulators of soil c dynamics in ecosystems under 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Effects of climate, parent material, and geomorphology on the occurrence, distribution and genesis of fibrous clay minerals in soils and associated Tertiary sediments. Ph.D. Thesis, Isfahan University of Technology.\nHopke, 1980, Multielemental characterization of urban roadway dust, Environ. Sci. Technol., 14, 164, 10.1021\u002Fes60162a006\nHunt, 1984, Magnetic measurements and heavy metals in atmospheric particulates of anthropogenic origin, Sci. Total Environ., 33, 129, 10.1016\u002F0048-9697(84)90387-5\nJordanova, 2003, Magnetic response of soils and vegetation to heavy metal pollution- a case study, Environ. Sci. Technol., 37, 4417, 10.1021\u002Fes0200645\nKapicka, 1999, Proxy mapping of fly-ash pollution of soils around a coal-burning power plant: a case study in the Czech Republic, J. Geochem. Explor., 66, 291, 10.1016\u002FS0375-6742(99)00008-4\nKim, 1998, Heavy metal contamination in dusts and stream sediments in the Taejon area, Korea, J. Geochem. 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and internal layers under three different land-use systems, Soil Sci Soc Am J, 77, 1625, 10.2136\u002Fsssaj2013.03.0086\nGentile, 2013, Integrated soil fertility management: Aggregate carbon and nitrogen stabilization in differently textured tropical soils, Soil Biol Biochem, 67, 124, 10.1016\u002Fj.soilbio.2013.08.016\nGrandy, 2002, Organic amendment and rotation crop effects on the recovery of soil organic matter and aggregation in potato cropping systems, Soil Sci Soc Am J, 66, 1311, 10.2136\u002Fsssaj2002.1311\nGrandy, 2006, Aggregation and organic matter protection following tillage of a previously uncultivated soil, Soil Sci Soc Am J, 70, 1398, 10.2136\u002Fsssaj2005.0313\nHai, 2010, Long-term fertilization and manuring effects on physically-separated soil organic matter pools under a wheat-wheat-maize cropping system in an arid region of China, Soil Biol Biochem, 42, 253, 10.1016\u002Fj.soilbio.2009.10.023\nHajabbasi M A, Fallahzade J. 2010. 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August 1–6, 2010, Brisbane, Australia.\nHao, 2005, Effect of fertilization on soil fertility and wheat yield of dryland in the Loess Plateau, Pedosphere, 15, 189\nJagadamma, 2008, Nitrogen fertilization and cropping system impacts on soil properties and their relationship to crop yield in the central Corn Belt, USA, Soil Till Res, 98, 120, 10.1016\u002Fj.still.2007.10.008\nJohn, 2005, Storage of organic carbon in aggregate and density fractions of silty soils under different types of land use, Geoderma, 128, 63, 10.1016\u002Fj.geoderma.2004.12.013\nKader, 2010, Limited influence of tillage management on organic matter fractions in the surface layer of silt soils under cereal-root crop rotations, Aust J Soil Res, 48, 16, 10.1071\u002FSR09052\nKiem, 2002, Refractory organic carbon in particle-size fractions of arable soils I: distribution of refractory carbon between the size fractions, Org Geochem, 33, 1683, 10.1016\u002FS0146-6380(02)00113-4\nKong, 2009, Transitioning from standard to minimum tillage: Trade-offs between soil organic matter stabilization, nitrous oxide emissions, and N availability in irrigated cropping systems, Soil Till Res, 104, 256, 10.1016\u002Fj.still.2009.03.004\nKristiansen, 2006, Similarity of differently sized macro-aggregates in arable soils of different texture, Geoderma, 137, 147, 10.1016\u002Fj.geoderma.2006.08.005\nLiu, 2013, Long-term effect of manure and fertilizer on soil organic carbon pools in dryland farming in Northwest China, PLoS ONE, 8, e56536, 10.1371\u002Fjournal.pone.0056536\nLiu, 2008, Rice uptake and recovery of nitrogen with different methods of applying 15N-labeled chicken manure and ammonium sulfate, Plant Prod Sci, 11, 271, 10.1626\u002Fpps.11.271\nLiu, 2005, Nitrogen controls on ecosystem carbon sequestration: a model implementation and application to Saskatchewan, Canada, Ecol Model, 186, 178, 10.1016\u002Fj.ecolmodel.2005.01.036\nLugato, 2010, Distribution of organic and humic carbon in wet-sieved aggregates of different soils under long-term fertilization experiment, Geoderma, 157, 80, 10.1016\u002Fj.geoderma.2010.03.017\nMikha, 2004, Tillage and manure effects on soil and aggregate-associated carbon and nitrogen, Soil Sci Soc Am J, 68, 809, 10.2136\u002Fsssaj2004.8090\nNie, 2014, Soil aggregate size distribution mediates microbial climate change feedbacks, Soil Biol Biochem, 68, 357, 10.1016\u002Fj.soilbio.2013.10.012\n1982\nPan, 2009, Combined inorganic\u002Forganic fertilization enhances N efficiency and increases rice productivity through organic carbon accumulation in a rice paddy from the Tai Lake region, China, Agr Ecosyst Environ, 131, 274, 10.1016\u002Fj.agee.2009.01.020\nPuget, 1995, Total and young organic-matter distributions in aggregates of silty cultivated soils, Eur J Soil Sci, 46, 449, 10.1111\u002Fj.1365-2389.1995.tb01341.x\nQiu, 2012, Soil organic carbon losses due to land use change in a semiarid grassland, Plant Soil, 355, 299, 10.1007\u002Fs11104-011-1099-x\nQuenea, 2004, Variation in lipid relative abundance and composition among different particle size fractions of a forest soil, Org Geochem, 35, 1355, 10.1016\u002FS0146-6380(04)00123-8\nRazafimbelo, 2008, Aggregate associated-C and physical protection in a tropical clayey soil under Malagasy conventional and no-tillage systems, Soil Till Res, 98, 140, 10.1016\u002Fj.still.2007.10.012\nRen, 2014, The effects of manure and nitrogen fertilizer applications on soil organic carbon and nitrogen in a high input cropping system, PLoS ONE, 9, e97732, 10.1371\u002Fjournal.pone.0097732\nShah, 2009, N uptake and yield of wheat as influenced by integrated use of organic and mineral nitrogen, Int J Plant Prod, 3, 45\nShryock, 2014, Effects of urea fertilization on carbon sequestration in Douglas-fir plantations of the coastal Pacific Northwest, Forest Ecol Manag, 318, 341, 10.1016\u002Fj.foreco.2014.01.040\nSix, 2004, A history of research on the link between (micro)aggregates, soil biota, and soil organic matter dynamics, Soil Till Res, 79, 7, 10.1016\u002Fj.still.2004.03.008\nSix, 2014, Aggregate-associated soil organic matter as an ecosystem property and a measurement tool, Soil Biol Biochem., 68, A4, 10.1016\u002Fj.soilbio.2013.06.014\nSix, 2000, Soil structure and organic matter: I. 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