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Soil Biol Biochem 41:1–12. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2008.09.015\nCui T, Li Z, Wang S (2017) Effects of in-situ straw decomposition on composition of humus and structure of humic acid at different soil depths. J Soils Sediments 17:2391–2399. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11368-017-1704-6\nDong ZJ, Li HB, Xiao JN, Sun JL, Liu RL, Zhang AP (2022) Soil multifunctionality of paddy field is explained by soil pH rather than microbial diversity after 8-years of repeated applications of biochar and nitrogen fertilizer. Sci Total Environ 853:158620. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2022b.158620\nDong LL, Yang X, Shi LL, Shen Y, Wang LQ, Wang JD, Li CJ, Zhang HD (2022a) Biochar and nitrogen fertilizer co-application changed SOC content and fraction composition in Huang-Huai-Hai plain, China. Chemosphere 291: 132925. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.chemosphere.2021.132925\nDou S (2010) Soil organic matter, 1st edn. Science Press, Beijing, China\nDou S, Zhang JJ, Li K (2008) Effect of organic matter applications on 13C-NMR spectra of humic acids of soil. Eur J Soil Sci 59:532–539. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2389.2007.01012.x\nEl-Naggar A, Lee SS, Rinklebe J, Farooq M, Song H, Sarmah AK, Zimmerman AR, Ahmad M, Shaheen SM, Ok YS (2019) Biochar application to low fertility soils: a review of current status, and future prospects. Gerdeoma 337:536–554. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2018.09.034\nGao JF, Dou S, Wang ZG (2019a) Structural analysis of humic acid in soil at different corn straw returning modes through fluorescence spectroscopy and infrared spectroscopy. Int J Anal Chem 2019:1086324. https:\u002F\u002Fdoi.org\u002F10.1155\u002F2019\u002F1086324\nGao XT, Tan WB, Zhao Y, Wu JQ, Sun QH, Qi HS, Xie XY, Wei ZM (2019b) Diversity in the mechanisms of humin formation during composting with different materials. Environ Sci Technol 53:3653–3662. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.est.8b06401\nKogel-Knabner I (2002) The macromolecular organic composition of plant and microbial residues as inputs to soil organic matter. Soil Biol Biochem 34:139–162. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0038-0717(01)00158-4\nKrasilnikov PV (2015) Stable carbon compounds in soils: their origin and functions. Eurasian Soil Sci+ 48:997–1008. https:\u002F\u002Fdoi.org\u002F10.1134\u002FS1064229315090069\nKuwatsuka S, Watanabe A, Itoh K, Arai S (2006) Comparison of two methods of preparation of humic and fulvic acids, IHSS method and NAGOYA method. Soil Sci Plant Nutr 38:23–30. https:\u002F\u002Fdoi.org\u002F10.1080\u002F00380768.1992.10416948\nLi JM, Cao LR, Yuan Y, Wang RP, Wen YZ, Man JY (2017) Comparative study for microcystin-LR sorption onto biochars produced from various plant- and animal-wastes at different pyrolysis temperatures: Influencing mechanisms of biochar properties. Bioresource Technol 247:794–803. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2017.09.120\nLi N, Lei WY, Long JH, Han XZ (2021) Restoration of chemical structure of soil organic matter under different agricultural practices from a severely degraded Mollisol. J Soil Sci Plant Nutr 21:3132–3145. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs42729-021-00594-x\nLu RK (1999) Soil agricultural chemical analysis method. China Agriculture Press, Beijing\nMeng J, He TY, Sanganyado E, Lan Y, Zhang WM, Han XR, Chen WC (2019) Development of the straw biochar returning concept in China. Biochar 1:139–149. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs42773-019-00019-0\nMi WH, Sun Y, Gao Q, Liu MY, Wu LH (2019) Changes in humus carbon fractions in paddy soil given different organic amendments and mineral fertilizers. Soil Tillage Res 195:104421. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.still.2019.104421\nMustafa A, Frouz J, Naveed M, Zhu P, Sun N, Xu MG, Delgadoe AN (2022) Stability of soil organic carbon under long-term fertilization: results from 13C NMR analysis and laboratory incubation. Environ Res 205:112476. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.envres.2021.112476\nNaz M, Dai ZC, Hussain S, Tariq M, Danish S, Khan IU, Qi SS, Du DL (2022) The soil pH and heavy metals revealed their impact on soil microbial community. J Environ Manag 321:115770. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jenvman.2022.115770\nNdzelu BS, Dou S, Zhang XW (2020) Changes in soil humus composition and humic acid structural characteristics under different corn straw returning modes. Soil Res 58:452–460. https:\u002F\u002Fdoi.org\u002F10.1071\u002FSR20025\nNdzelu BS, Dou S, Zhang XW, Zhang YF, Ma R, Liu, (2021) Tillage effects on humus composition and humic acid structural characteristics in soil aggregate-size fractions. Soil Tillage Res 213:105090. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.still.2021.105090\nRanatunga TD, He ZQ, Bhat KN, Zhong JY (2017) Solid-state ~(13)C nuclear magnetic resonance spectroscopic characterization of soil organic matter fractions in a forest ecosystem subjected to prescribed burning and thinning. Pedosphere 27:901–911. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS1002-0160(17)60439-9\nSchad P (2016) The international soil classification system WRB, third edition, 2014. In: Mueller L, Sheudshen A, Eulenstein F (eds) Novel Methods for monitoring and managing land and water resources in Siberia. Springer Water. Springer, Cham. https:\u002F\u002Fdoi.org\u002F10.1007\u002F978-3-319-24409-9_25\nSeddaiu G, Porcu G, Ledda L, Roggero PP, Agnelli A, Cort G (2013) Soil organic matter content and composition as influenced by soil management in a semi-arid Mediterranean agro-silvo-pastoral system. Agr Ecosyst Environ 167:1–11. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.agee.2013.01.002\nShah GM, Ali H, Ahmad I, Kamran M, Hammad M, Shah GA, Bakhat HF, Waqar A, Guo J, Dong R (2022) Nano agrochemical zinc oxide influences microbial activity, carbon, and nitrogen cycling of applied manures in the soil-plant system. Environ Pollut 293:118559. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.envpol.2021.118559\nSong GX, Novotny EH, Mao JD, Hayes MH (2016) Characterization of transformations of maize residues into soil organic matter. Sci Total Environ 579:1843–1854. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2016.11.169\nSong XY, Li Y, Yue X, Hussain Q, Zhang JJ, Liu QH, Jin SA, Cui DJ (2019) Effect of cotton straw-derived materials on native soil organic carbon. Sci Total Environ 663:38–44. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2019.01.311\nStevenson FJ (1994) Humus chemistry: genesis, composition, reactions. John Wiley, New York\nTan KH (2014) Humic matter in soil and the environment: principles and controversies. Second Edition, New York\nThers H, Djomo SN, Elsgaard L, Knudsen MT (2019) Biochar potentially mitigates greenhouse gas emissions from cultivation of oilseed rape for biodiesel. Sci Total Environ 671:180–188. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2019.03.257\nWang QK, Wang SL, Yu XJ, Zhang J, Liu YX (2007) Soil carbon mineralization potential and its effect on soil active organic carbon in evergreen broadleaved forest and Chinese fir plantation. Chin J Ecol 26:1918–1923. https:\u002F\u002Fdoi.org\u002F10.13292\u002Fj.1000-4890.2007.0366. (In Chinese)\nWang Y, Zhou M, Hou M, Chen YM, Sui YY, Jiao XG (2022) Regulation of nitrogen balance and yield on greenhouse eggplant under biochar addition in Mollisol. Plant Soil Environ 68:36–48. https:\u002F\u002Fdoi.org\u002F10.17221\u002F393\u002F2021-PSE\nWeber K, Quicker P (2018) Properties of biochar. Fuel 217:240–261. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.fuel.2017.12.054\nWu L, Zhang WJ, Wei WJ, He ZL, Kuzyakovbcf Y, Bolde R, Hu RG (2019) Soil organic matter priming and carbon balance after straw addition is regulated by long-term fertilization. Soil Biol Biochem 135:383–391. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2019.06.003\nYan S, Niu ZY, Zhang AG, Yan HT, Zhang H, He KX, Xiao XY, Wang NL, Guan CW, Liu GS (2019) Biochar application on paddy and purple soils in southern China: soil carbon and biotic activity. Roy Soc Open Sci 6:181499. https:\u002F\u002Fdoi.org\u002F10.1098\u002Frsos.181499\nYeomans JC, Bremner JM (1988) A rapid and precise method for routine determination of organic carbon in soil. Commun Soil Sci Plan 19:1467–1476\nZhang JM, Wang JK, An TT, Wei D, Chi FQ, Zhou BK (2017) Effects of long-term fertilization on soil humic acid composition and structure in Black Soil. Plos One 12:e0186918. https:\u002F\u002Fdoi.org\u002F10.1371\u002Fjournal.pone.0186918\nZhang JM, An TT, Chi FQ, Zhou BK, Hao XY, Jin L, Wang JK (2019a) Evolution over years of structural characteristics of humic acids in Black Soil as a function of various fertilization treatments. J Soil Sediments 19:1959–1969. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11368-018-2212-z\nZhang JJ, Wei YX, Liu JZ, Yuan JC, Liang Y, Ren J, Cai HG (2019b) Effects of maize straw and its biochar application on organic and humic carbon in water-stable aggregates of a Mollisol in Northeast China: a five-year field experiment. Soil Tillage Res 190:1–9. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.still.2019.02.014\nZhang XW, Dou S, Ndzelu BS, Guan XW, Zhang BY, Bai Y (2020) Effects of different corn straw amendments on humus composition and structural characteristics of humic acid in black soil. Commun Soil Sci Plan 51:107–117. https:\u002F\u002Fdoi.org\u002F10.1080\u002F00103624.2019.1695827\nZhang G, Dou S, Meng FR, Yin XB, Zhou X (2022) Transformation of biochar into extracted humic substances under short-term laboratory incubation conditions: evidence from stable carbon isotopes. Soil Tillage Res 215:105189. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.still.2021.105189\nZheng SQ, Zhang JM, Chi FQ, Zhou BK, Wei D, Kuang EJ, Jiang Y, Mi G, Chen YP (2021) Response of the chemical structure of soil organic carbon to modes of maize straw return. Sci Rep-UK 11:6574. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41598-021-84697-6\nZhou M, Wang CY, Xie ZH, Li YS, Zhang XY, Wang GH, Jin J, Ding DY, Liu XB (2020) Humic substances and distribution in Mollisols affected by six-year organic amendments. Agron J 112:4723–4740. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fagj2.20391\nZhou SX, Zhang CY, Xu HX, Jiang ZX (2022) Co-applying biochar and manganese ore can improve the formation and stability of humic acid during co-composting of sewage sludge and corn straw. Bioresource Technol 358:127297. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2022.127297\nZimmerman AR, Gao B, Ahn MY (2011) Positive and negative carbon mineralization priming effects among a variety of biochar-amended soils. Soil Biol Biochem 43:1169–1179. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2011.02.005",{"EN":163},"Biochar addition can effectively increase the soil organic carbon (SOC) content and improve soil quality. However, the formation mechanisms and structural changes of soil humic substances under biochar addition, especially under different types of biochar, are poorly understood. In this study, we compared the effects of different sources of biochar on the humus composition and humic acid (HA) structural characteristics of the Phaeozem region of Northeast China. Four treatments, including RB (rice husk biochar), CB (corn stalk biochar), TB (tobacco stalk biochar), and CK (no biochar application), were explored. SOC components were analysed, and HA structures were determined through Fourier transform infrared spectroscopy (FTIR) and 13C nuclear magnetic resonance spectroscopy (13C-NMR). Compared with the CK treatment, RB and TB increased the fulvic acid (FA) content by 32.67%, and CB significantly increased it by 56.33%. The FTIR and NMR spectra showed that CB strengthened the aliphatic characteristics of soil HA, while the aromatic structure proportion decreased. The CB treatment significantly reduced the ratio of alkyl C\u002FO-alkyl C (A\u002FO-A) and hydrophobic C\u002Fhydrophilic C (HB\u002FHI), and TB increased the HB\u002FHI ratio by 9.82%. CB simplified the HA structure and improved soil HA activity. TB was superior to the other biochar types (RB and CB) in terms of soil carbon sequestration. Obvious differences in the effects of adding different biochar types on the humus composition and HA structural characteristics were presented.",{"EN":165},"Responses of Soil Humus Composition and Humic Acid Structural Characteristics to the Addition of Different Types of Biochar in Phaeozems",{"VOID":167},"10.1007\u002Fs42729-023-01141-6","PUBLICATION","VERIFIED","Auto 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AM (2019) The effect of hydrogel particle size on water retention properties and availability under water stress. Int Soil Water Conserv Res 7:275–285. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.iswcr.2019.05.001\nAhmadi K, Ebadzadeh HR, Hatami F, Mohammadnia Afroozi S, Abbas Taghani R, Yari S, Kalantari MS (2021) Agricultural statistics of 2020, Volume 3: Horticultural products. Ministry of Jihad Agriculture of Iran, Tehran, Iran\nAllen RG, Pereira LS, Raes D, Smith M (1998) Crop evapotranspiration: guidelines for computing crop water requirements. Italy, Rome\nASTM D-14 (2014) Standard test methods for specific gravity of soil solids by water pycnometer. D854\nBlake GR (2015) Bulk density. In: Methods of soil analysis: Part 1 Physical and mineralogical properties, including statistics of measurement and sampling, 9.1. Am Soc Agro Inc., pp 374–390\nBurrell LD, Zehetner F, Rampazzo N, Wimmer B, Soja G (2016) Long-term effects of biochar on soil physical properties. Geoderma 282:96–102. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2016.07.019\nCarvalho MTM, Madari BE, Bastiaans L, van Oort PAJ, Leal WGO, Heinemann AB, da Silva MAS, Maia AHN, Parsons D, Meinke H (2016) Properties of a clay soil from 1.5 to 3.5years after biochar application and the impact on rice yield. Geoderma 276:7–18. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2016.04.013\nEkebafe L, Ogbeifun D, Okieimen F (2011) Polymer applications in agriculture. Biokemistri 23:81–89\nEubeler JP, Bernhard M, Knepper TP (2010) Environmental biodegradation of synthetic polymers II. Biodegradation of different polymer groups. TrAC Trends Anal Chem 29:84–100. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.trac.2009.09.005\nFAOSTAT (2021) http:\u002F\u002Fwww.fao.org\u002Ffaostat\u002Fen\u002F#data\u002FQCL\nGithinji L (2014) Effect of biochar application rate on soil physical and hydraulic properties of a sandy loam. Arch Agron Soil Sci 60:457–470. https:\u002F\u002Fdoi.org\u002F10.1080\u002F03650340.2013.821698\nGłąb T, Palmowska J, Zaleski T, Gondek K (2016) Effect of biochar application on soil hydrological properties and physical quality of sandy soil. Geoderma 281:11–20. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2016.06.028\nHan Y, Yu X, Yang P, Li B, Xu L, Wang C (2013) Dynamic study on water diffusivity of soil with super-absorbent polymer application. Environ Earth Sci 69:289–296. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12665-012-1956-9\nHorton R, Thompson ML, McBride JF (1988) Determination of effective porosity of soil materials\nY Khodarahmi S BoroomandNasab Soltani mohamadi A, Naseri A, 2019 Evaluation and comparison of modified hydrochar and superabsorbent on some of physical and chemical properties soil Iran J Irrig Drain 13 500 511\nKoopaee JA, Sohrab F (2004) Evaluating the application of superabsorbent polymers on soil water capacity and potential on three soil textures. Iran J Polym Sci Technol 17:163–173. https:\u002F\u002Fdoi.org\u002F10.22063\u002Fjipst.2004.458\nLiao R, Wu W, Ren S, Yang P (2016) Effects of superabsorbent polymers on the hydraulic parameters and water retention properties of soil. J Nanomater 2016:1–11. https:\u002F\u002Fdoi.org\u002F10.1155\u002F2016\u002F5403976\nLim TJ, Spokas KA, Feyereisen G, Novak JM (2016) Predicting the impact of biochar additions on soil hydraulic properties. Chemosphere 142:136–144. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.chemosphere.2015.06.069\nManyà JJ (2012) Pyrolysis for biochar purposes: a review to establish current knowledge gaps and research needs. Environ Sci Technol 46:7939–7954. https:\u002F\u002Fdoi.org\u002F10.1021\u002Fes301029g\nMohammadi Torkashvand A, Sedaghat Hoor S, Jamalpour H (2016) Effects of some organic matter and an artificial moisture absorbent on soil available water, delay of permanent wilting point and the growth of Lysimachia Nummularia cv. Aurea. J Water Soil Sci 20:87–99. https:\u002F\u002Fdoi.org\u002F10.18869\u002Facadpub.jstnar.20.75.87\nMohawesh O, Durner W (2019) Effects of bentonite, hydrogel and biochar amendments on soil hydraulic properties from saturation to oven dryness. Pedosphere 29:598–607. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS1002-0160(17)60426-0\nNik Ravesh I, Boroomandnasab S, Naseri AA, Mohammadi AS (2018) Investigating the effect of wheat straw biochar and hydrochar on physical properties of a sandy loam soil. J Water Soil (Agricultural Sci Technol ) 58:387–397. https:\u002F\u002Fdoi.org\u002F10.22067\u002Fjsw.v32i2.70445\nM Nowroozi S Tabatabaei hassan, Nouri MR, Motaghian HR, 2017 Short-term effects of biochar produced from date palm’s leaves on moisture retention in sandy loam soil J Soil Water Resour Conserv 6 137 150\nObia A, Mulder J, Martinsen V, Cornelissen G, Børresen T (2016) In situ effects of biochar on aggregation, water retention and porosity in light-textured tropical soils. Soil Tillage Res 155:35–44. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.still.2015.08.002\nOjeda G, Mattana S, Àvila A, Alcañiz JM, Volkmann M, Bachmann J (2015) Are soil–water functions affected by biochar application? Geoderma 249–250:1–11. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2015.02.014\nRazzaghi F, Rezaie N (2017) Effects of different levels of biochar on soil physical properties with different textures. J Soil Water Resour Conserv 7:75–88\nSarcheshmehpour M, Farpoor MH, Sarmast M (2020) Effect of polymers on soil moisture content and some growth characteristics of corn plant under drought stress. Electron J Soil Manag Sustain Prod 9:133–152. https:\u002F\u002Fdoi.org\u002F10.22069\u002Fejsms.2020.15953.1853\nShokouhi far M, Broomand nasab S, Soltani Mohammadi A, Hooshmand A rahim (2016) The effect of salinity of irrigation water and super absorbent polymer on some hydraulic and physical properties of sandy loam soil. Irrig Sci Eng 39:101–113. https:\u002F\u002Fdoi.org\u002F10.22055\u002Fjise.2016.12115\nA SoltaniMohammadi Y Khodarahmi boroomand nasab S, Nasseri AA, 2019 Evaluation of modified biochar and zeolite effect on some physical and chemical properties of loamy soil J Soil Water Resour Conserv 8 87 102\nStibinger J (2014) Examples of determining the hydraulic conductivity of soils. J. E. Purkyně University in Ústí n, Labem, Faculty of the Environment\nTammeorg P, Bastos AC, Jeffery S et al (2017) Biochars in soils: towards the required level of scientific understanding. J Environ Eng Landsc Manag 25:192–207. https:\u002F\u002Fdoi.org\u002F10.3846\u002F16486897.2016.1239582\nvan Genuchten MT (1980) A closed-form equation for predicting the hydraulic conductivity of unsaturated soils. Soil Sci Soc Am J 44:892–898. https:\u002F\u002Fdoi.org\u002F10.2136\u002Fsssaj1980.03615995004400050002x\nvan Genuchten MT, Simunek J, Leij FJ, Sejna M (1998) RETC, version 6.0, Code for quantifying the hydraulic functions of unsaturated soils. USDA-ARS, US Salin Lab, Riverside, CA\nWerdin J, Fletcher TD, Rayner JP, Williams NSG, Farrell C (2020) Biochar made from low density wood has greater plant available water than biochar made from high density wood. Sci Total Environ 705:135856. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2019.135856\nYazdanpanahi A, Ahmadaali K, Zare S, Jafari M (2019) The effect of two different biochars on the soil physical properties affecting irrigation management in desert regions. Iran J Soil Water Res 50:965–975. https:\u002F\u002Fdoi.org\u002F10.22059\u002Fijswr.2019.266029.668011\nZhang A, Bian R, Pan G, Cui L, Hussain Q, Li L, Zheng J, Zheng J, Zhang X, Han X, Yu X (2012) Effects of biochar amendment on soil quality, crop yield and greenhouse gas emission in a Chinese rice paddy: a field study of 2 consecutive rice growing cycles. F Crop Res 127:153–160. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.fcr.2011.11.020\nZhao W, Cao T, Dou P, Sheng J, Luo M (2019) Effect of various concentrations of superabsorbent polymers on soil particle-size distribution and evaporation with sand mulching. Sci Rep 9:3511. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41598-019-39412-x",{"EN":374},"Biochar and superabsorbents are used to improve a wide range of soil properties, including water holding capacity and nutrient retention. In this research, the effect of adding biochar and a superabsorbent on some of the physical properties of two arable soil types (a sandy loam and a clay loam soil) was studied. A greenhouse experiment was performed as a completely randomized design with three replications. Three levels of AquaSorb superabsorbent including zero (control), 5, and 10 g kg−1 soil, and three levels of walnut shell biochar including zero (control), 10, and 20 g kg−1 soil were used. The AquaSorb and biochar treatments were applied independently. Soil properties that included bulk density (ρb), particle density (ρs), porosity (f), saturated hydraulic conductivity (Ks), residual moisture (θr), saturated moisture (θs), moisture curve coefficient (α), moisture curve slope (n), field capacity (θfc), permanent wilting point (θpwp), and total available water (TAW) were measured after one and six irrigations. The use of 10 g of superabsorbent and 20 g of biochar per kilogram of soil had the greatest effect on the physical properties of both tested soils. Addition of 10 g of superabsorbent per kilogram of sandy loam soil decreased ρb by 22.7% and increased f, Ks, θs, θfc, and θpwp parameters by 28.9, 533.3, 16.3, 30.43, and 50.0%, respectively, and in clay loam soil, decreased ρb by 25.9% and increased the other parameters mentioned by 22.6, 155.6, 26.1, 44.8, and 46.2%, respectively. Addition of 20 g of biochar per kilogram of clay loam soil increased Ks, θs, and θpwp parameters by 33.3, 10.9, and 23.1%, respectively, and had no significant effect on other properties of this soil and sandy loam soil. The application of the superabsorbent and biochar in the studied soils had the greatest effect on Ks and θpwp.",{"EN":376},"The Effect of a Superabsorbent and Biochar on Some Physical and Hydraulic Properties of Two Arable Sandy Loam and Clay Loam Soils",{"VOID":378},"10.1007\u002Fs42729-022-00827-7","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs42729-022-00827-7",[381,396,413,425],{"id":382,"sortIndex":204,"researcher":20,"roles":383,"affiliations":384,"properties":393},"39e025f6-f879-4016-b508-6c8d98732a95",[176],[385],{"id":20,"sortIndex":21,"affiliation":386,"properties":20},{"id":387,"createTime":388,"updateTime":388,"relativeEntities":389,"slug":20,"properties":390,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"0d0431b8-11ee-4a93-948f-e74fffc95dcf","2023-12-27T07:26:11.813+00:00",[],{"title":391},{"VI":392},"Department of Soil Science, Faculty of Agriculture, Bu-Ali 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A, Hardie M, Acuna T, Birch C (2017) Evaluation of methods for determining soil aggregate stability. Soil Tillage Res 167:39–45. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.still.2016.11.003\nBach EM, Hofmockel KS (2014) Soil aggregate isolation method affects measures of intra-aggregate extracellular enzyme activity. Soil Biol Biochem 69:54–62. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2013.10.033\nBach EM, Williams RJ, Hargreaves SK, Yang F, Hofmockel KS (2018) Greatest soil microbial diversity found in micro-habitats. Soil Biol Biochem 118:217–226. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2017.12.018\nBlaud A, Menon M, van der Zaan B, Lair GJ, Banwart SA (2017) Effects of Dry and Wet Sieving of Soil on Identification and Interpretation of Microbial Community Composition, in: advances in Agronomy. Academic Press Inc., pp 119–142. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fbs.agron.2016.10.006\nBolyen E, Rideout JR, Dillon MR, Bokulich NA, Abnet CC, Al-Ghalith GA, Alexander H, Alm EJ, Arumugam M, Asnicar F, Bai Y, Bisanz JE, Bittinger K, Brejnrod A, Brislawn CJ, Brown CT, Callahan BJ, Caraballo-Rodríguez AM, Chase J, Cope EK, da Silva R, Diener C, Dorrestein PC, Douglas GM, Durall DM, Duvallet C, Edwardson CF, Ernst M, Estaki M, Fouquier J, Gauglitz JM, Gibbons SM, Gibson DL, Gonzalez A, Gorlick K, Guo J, Hillmann B, Holmes S, Holste H, Huttenhower C, Huttley GA, Janssen S, Jarmusch AK, Jiang L, Kaehler BD, bin Kang K, Keefe CR, Keim P, Kelley ST, Knights D, Koester I, Kosciolek T, Kreps J, Langille MGI, Lee J, Ley R, Liu Y-X, Loftfield E, Lozupone C, Maher M, Marotz C, Martin BD, McDonald D, McIver LJ, Melnik Av, Metcalf JL, Morgan SC, Morton JT, Naimey AT, Navas-Molina JA, Nothias LF, Orchanian SB, Pearson T, Peoples SL, Petras D, Preuss ML, Pruesse E, Rasmussen LB, Rivers A, Robeson MS, Rosenthal P, Segata N, Shaffer M, Shiffer A, Sinha R, Song SJ, Spear JR, Swafford AD, Thompson LR, Torres PJ, Trinh P, Tripathi A, Turnbaugh PJ, Ul-Hasan S, van der Hooft JJJ, Vargas F, Vázquez-Baeza Y, Vogtmann E, von Hippel M, Walters W, Wan Y, Wang M, Warren J, Weber KC, Williamson AD, Xu ZZ Zaneveld, J.R., Zhang, Y., Zhu, Q., Knight, R., Caporaso, J.G., 2019. Reproducible, interactive, scalable and extensible microbiome data science using QIIME 2. Nat Biotechnol 37, 852–857\nCaporaso JG, Lauber CL, Walters WA, Berg-Lyons D, Lozupone CA, Turnbaugh PJ, Fierer N, Knight R (2011) Global patterns of 16S rRNA diversity at a depth of millions of sequences per sample. Proc Natl Acad Sci 108(supplement1):4516–4522. https:\u002F\u002Fdoi.org\u002F10.1073\u002Fpnas.1000080107\nClarke K, Green R (1988) Statistical design and analysis for a biological effects study. Mar Ecol Prog Ser 46:213–226. https:\u002F\u002Fdoi.org\u002F10.3354\u002Fmeps046213\nR Core Team (2022) R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. URL https:\u002F\u002Fwww.R-project.org\u002F\nDavinic M, Fultz LM, Acosta-Martinez V, Calderón FJ, Cox SB, Dowd SE, Allen VG, Zak JC, Moore-Kucera J (2012) Pyrosequencing and mid-infrared spectroscopy reveal distinct aggregate stratification of soil bacterial communities and organic matter composition. Soil Biol Biochem 46:63–72. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2011.11.012\nDucret A, Grangeasse C (2021) Recent progress in our understanding of peptidoglycan assembly in Firmicutes. Curr Opin Microbiol 60:44–50. https:\u002F\u002Fdoi.org\u002F10.1016\u002FJ.MIB.2021.01.011\nEdgar RC (2013) Highly accurate OTU sequences from microbial amplicon reads. Nat Methods 10:996–998. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fnmeth.2604\nElliott ET (1986) Aggregate structure and Carbon, Nitrogen, and Phosphorus in native and cultivated soils. Soil Sci Soc Am J 50:627–633. https:\u002F\u002Fdoi.org\u002F10.2136\u002Fsssaj1986.03615995005000030017x\nFelde VJMNL, Schweizer SA, Biesgen D, Ulbrich A, Uteau D, Knief C, Graf-Rosenfellner M, Kögel-Knabner I, Peth S (2021) Wet sieving versus dry crushing: soil microaggregates reveal different physical structure, bacterial diversity and organic matter composition in a clay gradient. Eur J Soil Sci 72:810–828. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fejss.13014\nGao X, Xie Y, Liu G, Liu B, Duan X (2015) Effects of soil erosion on soybean yield as estimated by simulating gradually eroded soil profiles. Soil Tillage Res 145:126–134. https:\u002F\u002Fdoi.org\u002F10.1016\u002FJ.STILL.2014.09.004\nGao X, Hu Y, Sun Q, Du L, Duan P, Yao L, Guo S (2018) Erosion-induced carbon losses and CO2 emissions from Loess and Black soil in China. CATENA 171:533–540. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.catena.2018.08.001\nGao X, Li W, Salman A, Wang R, Du L, Yao L, Hu Y, Guo S (2020) Impact of topsoil removal on soil CO2 emission and temperature sensitivity in Chinese Loess Plateau. Sci Total Environ 708:135102. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2019.135102\nGao X, Berhe AA, Hu Y, et al. (2023) Role of soil organic matter composition and microbial communities on SOC stability: insights from particle-size aggregates. J Soils Sediments 23:2878–2891. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11368-023-03528-5\nHawley N (1982) Settling velocity distribution of natural aggregates. J Geophys Res 87:9489–9498. https:\u002F\u002Fdoi.org\u002F10.1029\u002FJC087iC12p09489\nHe Y, Hu Y, Gao X, Wang R, Guo S, Li X (2020) Minor topography governing erosional distribution of SOC and temperature sensitivity of CO2 emissions: comparisons between concave and convex toposequence. J Soils Sediments 20:1906–1919. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11368-020-02575-6\nHu Y, Kuhn NJ (2016) Erosion-induced exposure of SOC to mineralization in aggregated sediment. CATENA 137:517–525. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.catena.2015.10.024\nHu Y, Fister W, Rüegg H-R, Kinnell PA, Kuhn NJ (2013) The use of equivalent quarz size and settling tube apparatus to fractionate soil aggregates by settling velocity. Geomorphology Techniques (Online Edition), British Society for Geomorphology 1, section, 1–9\nHu Y, Berhe AA, Fogel ML, Heckrath GJ, Kuhn NJ (2016) Transport-distance specific SOC distribution: does it skew erosion induced C fluxes? Biogeochemistry 128:339–351. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10533-016-0211-y\nJiang J, Guo S, Zhang Y, Liu Q, Wang R, Wang Z, Li N, Li R (2015) Changes in temperature sensitivity of soil respiration in the phases of a three-year crop rotation system. Soil Tillage Res 150:139–146. https:\u002F\u002Fdoi.org\u002F10.1016\u002FJ.STILL.2015.02.002\nJiao S, Chen W, Wang J, Du N, Li Q, Wei G (2018) Soil microbiomes with distinct assemblies through vertical soil profiles drive the cycling of multiple nutrients in reforested ecosystems. Microbiome 6:13. https:\u002F\u002Fdoi.org\u002F10.1186\u002Fs40168-018-0526-0\nJiao P, Li Z, Yang L, He J, Chang X, Xiao H, Nie X, Tong D (2021) Bacteria are more sensitive than fungi to moisture in eroded soil by natural grass vegetation restoration on the Loess Plateau. Sci Total Environ 756:143899. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2020.143899\nKõljalg U, Nilsson RH, Abarenkov K, Tedersoo L, Taylor AFS, Bahram M, Bates ST, Bruns TD, Bengtsson-Palme J, Callaghan TM (2013) Towards a unified paradigm for sequence‐based identification of fungi. Mol Ecol 22:5271–5277. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fmec.12481\nLiao H, Gao S, Hao X, Qin F, Ma S, Chen W, Huang Q (2021) Soil aggregate isolation method affects interpretation of protistan community. Soil Biol Biochem 161:108388. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2021.108388\nLin Y, Ye G, Kuzyakov Y, Liu D, Fan J, Ding W (2019) Long-term manure application increases soil organic matter and aggregation, and alters microbial community structure and keystone taxa. Soil Biol Biochem 134:187–196. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2019.03.030\nLoch RJ (2001) Settling velocity - a new approach to assessing soil and sediment properties. Comput Electron Agric 31:305–316. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0168-1699(00)00189-7\nLu G, Tian H, Tan X, Megharaj M, He Y, He W (2020) Distribution of soil nutrients and enzyme activities in different aggregates under two sieving methods. Soil Sci Soc Am J 84:331–344. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fsaj2.20011\nMagoč T, Salzberg SL (2011) Fast length adjustment of short reads to improve genome assemblies. Bioinformatics 27:2957–2963. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fbioinformatics\u002Fbtr507\nMartin M (2011) Cutadapt removes adapter sequences from high-throughput sequencing reads. EMBnet J 17:10–12. https:\u002F\u002Fdoi.org\u002F10.14806\u002FEJ.17.1.200\nQuast C, Pruesse E, Yilmaz P, Gerken J, Schweer T, Yarza P, Peplies JJ, Glockner FO, Gloeckner FO (2013) The SILVA ribosomal RNA gene database project: improved data processing and web-based tools. Nucleic Acids Res 41:D590–D596. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fnar\u002Fgks1219\nRabbi SMF, Minasny B, McBratney AB, Young IM (2020) Microbial processing of organic matter drives stability and pore geometry of soil aggregates. Geoderma 360:114033. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2019.114033\nReichert JM, Norton LD, Favaretto N, Huang C, Blume E (2009) Settling velocity, Aggregate Stability, and Interrill Erodibility of soils varying in Clay Mineralogy. Soil Sci Soc Am J 73:1369–1377. https:\u002F\u002Fdoi.org\u002F10.2136\u002Fsssaj2007.0067\nSainju UM (2006) Carbon and nitrogen pools in soil aggregates separated by dry and wet sieving methods. Soil Sci 171:937–949. https:\u002F\u002Fdoi.org\u002F10.1097\u002F01.ss0000228062.30958.5a\nSeaton FM, George PBL, Lebron I, Jones DL, Creer S, Robinson DA (2020) Soil textural heterogeneity impacts bacterial but not fungal diversity. Soil Biol Biochem 144:107766. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2020.107766\nSmith DP, Peay KG (2014) Sequence depth, not PCR replication, improves ecological inference from next generation DNA sequencing. PLoS One 9:e90234. https:\u002F\u002Fdoi.org\u002F10.1371\u002Fjournal.pone.0090234\nSix J, Elliott ET, Paustian K (2000) Soil macroaggregate turnover and microaggregate formation: a mechanism for C sequestration under no-tillage agriculture. Soil Biol Biochem 32:2099–2103. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0038-0717(00)00179-6\nStarr GC, Lal R, Malone R, Hothem D, Owens L, Kimble J (2000) Modeling soil carbon transported by water erosion processes. Land Degrad and Dev 11:83–91. https:\u002F\u002Fdoi.org\u002F10.1002\u002F(SICI)1099-145X(200001\u002F02)11:1\u003C83::AID-LDR370>3.0.CO;2-W\nTrivedi P, Rochester IJ, Trivedi C, van Nostrand JD, Zhou J, Karunaratne S, Anderson IC, Singh BK (2015) Soil aggregate size mediates the impacts of cropping regimes on soil carbon and microbial communities. Soil Biol Biochem 91:169–181. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2015.08.034\nUpton RN, Bach EM, Hofmockel KS (2019) Spatio-temporal microbial community dynamics within soil aggregates. Soil Biol Biochem 132:58–68. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2019.01.016\nWang R, Hu Y, Khan A, Du L, Wang Y, Hou F, Guo S (2021) Soil prokaryotic community structure and co-occurrence patterns on the fragmented Chinese Loess Plateau: effects of topographic units of a soil eroding catena. CATENA 198:105035. https:\u002F\u002Fdoi.org\u002F10.1016\u002FJ.CATENA.2020.105035\nXiao L, Hu Y, Greenwood P, Kuhn NJ (2015) A combined Raindrop Aggregate Destruction Test-Settling Tube (RADT-ST) approach to identify the settling velocity of sediment. Hydrology 2:176–192. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fhydrology2040176",{"EN":484},"Soil microbial communities play a vital role in biogeochemical cycling and ecosystem functions at the aggregate scale. Soil fractionation methods can affect the interpretation of microbial spatial distribution and ecological processes in aggregates. However, there is a lack of comparative studies illustrating the differences between wet sieving and settling fractionation on soil aggregate microbial communities. In this study, we compared bacterial and fungal community composition and diversity within three soil aggregates sizes separated by wet sieving and settling tube apparatus. Settling fractionation increased the relative abundance of Verrucomicrobia and Planctomycetes by 80.1%-93.6% and 54.5%-100%, respectively, but reduced that of Actinobacteria and Firmicutes by 16.7%-36.9% and 41.4%-95.7% respectively, in the three aggregate size fractions in comparison with wet sieving. However, the relative abundance of major genus (relative abundance > 0.2%) rather than phylum of fungal communities were significantly different for the two fractionation methods (P \u003C 0.05). Compared with wet sieving, settling fractionation resulted in the detection of significantly less bacterial diversity (decreased by 14.2-18.7% for OTU richness and 6.8-6.9% for Shannon index) but more fungal diversity (increased by 12.3-51.3% for OTU richness and 13.8-35.1% for Shannon index) in finest soil aggregates. Distinct aggregate-disrupting energy from settling fractionation and wet sieving resulted in different size distributions and soil physicochemical and biological properties, leading to the differentiation of microhabitats and microbial communities. Settling fractionation and wet sieving both revealed significant differences in microbial communities among aggregate size fractions (P \u003C 0.05). Here, our findings highlight that wet sieving should be favored in numerous studies, while settling fractionation may prove particularly suitable for research within the context of erosion.",{"EN":486},"Effects of Fractionation Methods on Soil Aggregate Microbial Community Composition: Settling vs. Wet Sieving",{"VOID":488},"10.1007\u002Fs42729-024-01618-y","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs42729-024-01618-y",[491,530,549,568,580,592,604,623],{"id":492,"sortIndex":21,"researcher":20,"roles":493,"affiliations":494,"properties":527},"5dfb0f6d-8e8f-41e6-b9e0-fd397d82dbad",[176],[495,505,517],{"id":20,"sortIndex":21,"affiliation":496,"properties":20},{"id":497,"createTime":498,"updateTime":499,"relativeEntities":500,"slug":501,"properties":502,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"60cfbc33-3eb4-4827-8bbd-7a0cc16d3916","2023-12-29T11:19:05.386+00:00","2024-10-12T15:08:59.851+00:00",[],"State-Key-Laboratory-of-Soil-Erosion-and-Dryland-Farming-On-the-Loess-Plateau-Institute-of-Soil-and-Water-Conservation-Northwest-A-F-University-Yangling-China",{"title":503},{"VI":504},"State Key Laboratory of Soil Erosion and Dryland Farming On the Loess Plateau, Institute 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Ann for Sci 59:93–98. https:\u002F\u002Fdoi.org\u002F10.1051\u002Fforest:2001008",{"doi":952},"10.1051\u002Fforest:2001008",{"id":20,"text":954,"url":20,"identifiers":955},"Founoune H, Duponnois R, Meyer JM, Thioulouse J, Masse D, Chotte JL, Neyra M (2002b) Interactions between ectomycorrhizal symbiosis and fluorescent pseudomonads on Acacia holosericea: isolation of mycorrhiza helper bacteria (MHB) from a Soudano-Sahelian soil. FEMS Microbiol Ecol 41:37–46. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1574-6941.2002.tb00964.x",{"doi":956},"10.1111\u002Fj.1574-6941.2002.tb00964.x",{"id":20,"text":958,"url":20,"identifiers":959},"Gibson T, Speirs J, Brady C (1984) Salt-tolerance in plants. II. In vitro translation of m-RNAs from salt-tolerant and salt-sensitive plants on wheat germ ribosomes. Responses to ions and compatible organic solutes. Plant, Cell Environ 7:579–587. https:\u002F\u002Fdoi.org\u002F10.1111\u002F1365-3040.ep11591845",{"doi":960},"10.1111\u002F1365-3040.ep11591845",{"id":20,"text":962,"url":20,"identifiers":963},"Guinet M, Nicolardot B, Revellin C, Durey V, Carlsson G, Voisin A-S (2018) Comparative effect of inorganic N on plant growth and N2 fixation of ten legume crops: towards a better understanding of the differential response among species. Plant Soil 432:207–227. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11104-018-3788-1",{"doi":964},"10.1007\u002Fs11104-018-3788-1",{"id":20,"text":966,"url":20,"identifiers":967},"Hardarson G, Hera C (1998) Use of 15 N isotope dilution method to quantify nitrogen fixation in legumes and its potential use for non-legumes. Springer, Nitrogen fixation with non-legumes. https:\u002F\u002Fdoi.org\u002F10.1007\u002F978-94-011-5232-7_36",{"doi":968},"10.1007\u002F978-94-011-5232-7_36",{"id":20,"text":970,"url":20,"identifiers":971},"Hartung W, Leport L, Ratcliffe RG, Sauter A, Duda R, Turner NC (2002) Abscisic acid concentration, root pH and anatomy do not explain growth differences of chickpea (Cicer arietinum L.) and lupin (Lupinus angustifolius L.) on acid and alkaline soils. Plant Soil 240:191–199. https:\u002F\u002Fdoi.org\u002F10.1023\u002FA:1015831610452",{"doi":972},"10.1023\u002FA:1015831610452",{"id":20,"text":974,"url":20,"identifiers":975},"He X, Xu M, Qiu GY, Zhou J (2009) Use of 15N stable isotope to quantify nitrogen transfer between mycorrhizal plants. Journal of Plant Ecology 2:107–118. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fjpe\u002Frtp015",{"doi":976},"10.1093\u002Fjpe\u002Frtp015",{"id":20,"text":978,"url":20,"identifiers":979},"Högberg P (1997) Tansley review no. 95 15N natural abundance in soil–plant systems. New Phytol 137:179–203. https:\u002F\u002Fdoi.org\u002F10.1046\u002Fj.1469-8137.1997.00808.x",{"doi":980},"10.1046\u002Fj.1469-8137.1997.00808.x",{"id":20,"text":982,"url":20,"identifiers":983},"Howieson J, Dilworth M (2016) Working with rhizobia. Australian centre for international agricultural research Canberra, Australia",{},{"id":20,"text":985,"url":20,"identifiers":986},"Huang L, Baumgartl T, Zhou L, Mulligan D (2014) The new paradigm for phytostabilising mine wastes–ecologically engineered pedogenesis and functional root zones",{},{"id":20,"text":988,"url":20,"identifiers":989},"Islam A, Edwards D, Asher C (1980) pH optima for crop growth. Plant Soil 54:339–357. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF02181830",{"doi":990},"10.1007\u002FBF02181830",{"id":20,"text":992,"url":20,"identifiers":993},"Jakobsen I (1985) The role of phosphorus in nitrogen fixation by young pea plants (Pisum sativum). Physiol Plant 64:190–196. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1399-3054.1985.tb02334.x",{"doi":994},"10.1111\u002Fj.1399-3054.1985.tb02334.x",{"id":20,"text":996,"url":20,"identifiers":997},"Javid M, Ford R, Nicolas ME (2012) Tolerance responses of Brassica juncea to salinity, alkalinity and alkaline salinity. Funct Plant Biol 39:699–707. https:\u002F\u002Fdoi.org\u002F10.1071\u002FFP12109",{"doi":998},"10.1071\u002FFP12109",{"id":20,"text":1000,"url":20,"identifiers":1001},"Lakshmi-Kumari M, Singh C, Subba Rao N (1974) Root hair infection and nodulation in lucerne (Medicago sativa L.) as influenced by salinity and alkalinity. Plant Soil 40:261–268. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF00011509",{"doi":1002},"10.1007\u002FBF00011509",{"id":20,"text":1004,"url":20,"identifiers":1005},"Leena A, Räsänen JSKL (2001) Symbiotic properties of sinorhizobia isolated from Acacia and Prosopis nodules in Sudan and Senegal. Plant and Soil 235:193–210",{"doi":1006},"10.1023\u002FA:1011901706936",{"id":20,"text":1008,"url":20,"identifiers":1009},"Leung K, Bottomley PJ (1987) Influence of phosphate on the growth and nodulation characteristics of Rhizobium trifolii. Appl Environ Microbiol 53:2098–2105. https:\u002F\u002Fdoi.org\u002F10.1128\u002Faem.53.9.2098-2105.1987",{"doi":1010},"10.1128\u002Faem.53.9.2098-2105.1987",{"id":20,"text":1012,"url":20,"identifiers":1013},"Li C, Fang B, Yang C, Shi D, Wang D (2009) Effects of various salt–alkaline mixed stresses on the state of mineral elements in nutrient solutions and the growth of alkali resistant halophyte Chloris virgata. J Plant Nutr 32:1137–1147. https:\u002F\u002Fdoi.org\u002F10.1080\u002F01904160902943163",{"doi":1014},"10.1080\u002F01904160902943163",{"id":20,"text":1016,"url":20,"identifiers":1017},"Liu W-q, Song Y-s, Wang B, Li J-t, Shu W-s (2012) Nitrogen fixation in biotic crusts and vascular plant communities on a copper mine tailings. Eur J Soil Biol 50:15–20. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ejsobi.2011.11.009",{"doi":1018},"10.1016\u002Fj.ejsobi.2011.11.009",{"id":20,"text":1020,"url":20,"identifiers":1021},"Liu S, Liao LL, Nie MM, Peng WT, Zhang MS, Lei JN, Zhong YJ, Liao H, Chen ZC (2020) A VIT-like transporter facilitates iron transport into nodule symbiosomes for nitrogen fixation in soybean. New Phytol 226:1413–1428. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fnph.16506",{"doi":1022},"10.1111\u002Fnph.16506",{"id":20,"text":1024,"url":20,"identifiers":1025},"Lonati M, Probo M, Gorlier A, Lombardi G (2015) Nitrogen fixation assessment in a legume-dominant alpine community: comparison of different reference species using the 15N isotope dilution technique. Alp Bot 125:51–58. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00035-014-0143-x",{"doi":1026},"10.1007\u002Fs00035-014-0143-x",{"id":20,"text":1028,"url":20,"identifiers":1029},"Lopez BD, Teixeira AF, Michel DC, Guimarães AA, Costa AM, Costa JS, Pereira MD, Duarte BL, Moreira FM (2021) Genetic and symbiotic characterization of rhizobia nodulating legumes in a mining area in southeast Brazil. Scientia Agricola 79:e20200238. https:\u002F\u002Fdoi.org\u002F10.1590\u002F1678-992X-2020-0238",{"doi":1030},"10.1590\u002F1678-992X-2020-0238",{"id":20,"text":1032,"url":20,"identifiers":1033},"Mariotti A (1983) Atmospheric nitrogen is a reliable standard for natural 15N abundance measurements. Nature 303:685–687. https:\u002F\u002Fdoi.org\u002F10.1038\u002F303685a0",{"doi":1034},"10.1038\u002F303685a0",{"id":20,"text":1036,"url":20,"identifiers":1037},"Mhamdi R, Nouairi I, Ben Hammouda T, Mhamdi R, Mhadhbi H (2015) Growth capacity and biochemical mechanisms involved in rhizobia tolerance to salinity and water deficit. J Basic Microbiol 55:451–461. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fjobm.201400451",{"doi":1038},"10.1002\u002Fjobm.201400451",{"id":20,"text":1040,"url":20,"identifiers":1041},"Mortimer PE, Le Roux MR, Pérez-Fernández MA, Benedito VA, Kleinert A, Xu J, Valentine AJ (2012) The dual symbiosis between arbuscular mycorrhiza and nitrogen fixing bacteria benefits the growth and nutrition of the woody invasive legume Acacia cyclops under nutrient limiting conditions. Plant Soil 366:229–241. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11104-012-1421-2",{"doi":1042},"10.1007\u002Fs11104-012-1421-2",{"id":20,"text":1044,"url":20,"identifiers":1045},"Nazar R, Iqbal N, Masood A, Syeed S, Khan NA (2011) Understanding the significance of sulfur in improving salinity tolerance in plants. Environ Exp Bot 70:80–87. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.envexpbot.2010.09.011",{"doi":1046},"10.1016\u002Fj.envexpbot.2010.09.011",{"id":20,"text":1048,"url":20,"identifiers":1049},"Pereira P, Bliss F (1989) Selection of common bean (Phaseolus vulgaris L.) for N2 fixation at different levels of available phosphorus under field and environmentally-controlled conditions. Plant Soil 115:75–82. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF02220696",{"doi":1050},"10.1007\u002FBF02220696",{"id":20,"text":1052,"url":20,"identifiers":1053},"Rao D, Giller K, Yeo A, Flowers T (2002) The effects of salinity and sodicity upon nodulation and nitrogen fixation in chickpea (Cicer arietinum). Ann Bot 89:563–570. https:\u002F\u002Fdoi.org\u002F10.1093\u002Faob\u002Fmcf097",{"doi":1054},"10.1093\u002Faob\u002Fmcf097",{"id":20,"text":1056,"url":20,"identifiers":1057},"Rayment GE, Lyons DJ (2011) Soil chemical methods: Australasia. CSIRO publishing",{"doi":1058},"10.1071\u002F9780643101364",{"id":20,"text":1060,"url":20,"identifiers":1061},"Reza MS, Ahmed A, Caesarendra W, Abu Bakar MS, Shams S, Saidur R, Aslfattahi N, Azad AK (2019) Acacia Holosericea: an invasive species for bio-char, bio-oil, and biogas production. Bioengineering (Basel) 6. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fbioengineering6020033",{"doi":1062},"10.3390\u002Fbioengineering6020033",{"id":20,"text":1064,"url":20,"identifiers":1065},"Riley IT, Dilworth M (1985) Cobalt requirement for nodule development and function in Lupinus angustifolius L. New Phytol 100:347–359. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1469-8137.1985.tb02784.x",{"doi":1066},"10.1111\u002Fj.1469-8137.1985.tb02784.x",{"id":20,"text":1068,"url":20,"identifiers":1069},"Rios CO, Siqueira-Silva AI, Pereira EG (2023) Revegetation of mining-impacted sites with a tropical native grass: constraints of climate seasonality and trace-element accumulation. J Environ Manage 326:116655. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jenvman.2022.116655",{"doi":1070},"10.1016\u002Fj.jenvman.2022.116655",{"id":20,"text":1072,"url":20,"identifiers":1073},"Rivero-Villar A, Templer PH, Parra-Tabla V, Campo J (2018) Differences in nitrogen cycling between tropical dry forests with contrasting precipitation revealed by stable isotopes of nitrogen in plants and soils. Biotropica 50:859–867. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fbtp.12612",{"doi":1074},"10.1111\u002Fbtp.12612",{"id":20,"text":1076,"url":20,"identifiers":1077},"Robertson LM, Wu S, You F, Huang L, Southam G, Chan T-S, Lu Y-R, Bond PL (2020) Geochemical and mineralogical changes in magnetite Fe-ore tailings induced by biomass organic matter amendment. Sci Total Environ 724:138196. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2020.138196",{"doi":1078},"10.1016\u002Fj.scitotenv.2020.138196",{"id":20,"text":1080,"url":20,"identifiers":1081},"Rodríguez-Rodríguez RM, Guimarães AA, de Castro JL, Siqueira JO, Carneiro MA, de Souza Moreira FM (2021) Rhizobia and endophytic bacteria isolated from rainforest fragments within an iron ore mining site of the Eastern Brazilian Amazon. Braz J Microbiol 52:1461–1474. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs42770-021-00524-0",{"doi":1082},"10.1007\u002Fs42770-021-00524-0",{"id":20,"text":1084,"url":20,"identifiers":1085},"Sanginga N, Danso S, Bowen G (1989) Nodulation and growth response of Allocasuarina and Casuarina species to phosphorus fertilization. Plant Soil 118:125–132. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF02232797",{"doi":1086},"10.1007\u002FBF02232797",{"id":20,"text":1088,"url":20,"identifiers":1089},"Shamseldin A, Werner D (2005) High salt and high pH tolerance of new isolated Rhizobium etli strains from Egyptian soils. Curr Microbiol 50:11–16. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00284-004-4391-7",{"doi":1090},"10.1007\u002Fs00284-004-4391-7",{"id":20,"text":1092,"url":20,"identifiers":1093},"Singleton PW, Bohlool BB (1984) Effect of salinity on nodule formation by soybean. Plant Physiol 74:72–76",{"doi":1094},"10.1104\u002Fpp.74.1.72",{"id":20,"text":1096,"url":20,"identifiers":1097},"Singleton P, AbdelMagid H, Tavares J (1985) Effect of phosphorus on the effectiveness of strains of Rhizobium japonicum. Soil Sci Soc Am J 49:613–616. https:\u002F\u002Fdoi.org\u002F10.2136\u002Fsssaj1985.03615995004900030016x",{"doi":1098},"10.2136\u002Fsssaj1985.03615995004900030016x",{"id":20,"text":1100,"url":20,"identifiers":1101},"Subramaniam P, Paradinas R, Rodriguez-Barrueco C (1982) Nodulation and growth of Lupinus angustifolius L. as influenced by varied pH levels of the rooting medium. Proc 2nd International Lupin Conference7 Torremolinos (Espana)-Mayo: 134–138",{},{"id":20,"text":1103,"url":20,"identifiers":1104},"Sun X, Kong T, Häggblom MM, Kolton M, Li F, Dong Y, Huang Y, Li B, Sun W (2020) Chemolithoautotropic diazotrophy dominates the nitrogen fixation process in mine tailings. Environ Sci Technol 54:6082–6093. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.est.9b07835",{"doi":1105},"10.1021\u002Facs.est.9b07835",{"id":20,"text":1107,"url":20,"identifiers":1108},"Tang C, Robson AD (1993) pH above 6.0 reduces nodulation in Lupinus species. Plant Soil 152:269–276. https:\u002F\u002Fdoi.org\u002F10.1080\u002F01904169209364471",{"doi":1109},"10.1080\u002F01904169209364471",{"id":20,"text":1111,"url":20,"identifiers":1112},"Tang C, Longnecker N, Thomson C, Greenway H, Robson A (1992a) Lupin (Lupinus angustifolius L.) and pea (Pisum sativum L.) roots differ in their sensitivity to pH above 6.0. J Plant Physiol 140:715–719",{"doi":1113},"10.1016\u002FS0176-1617(11)81028-X",{"id":20,"text":1115,"url":20,"identifiers":1116},"Tang C, Robson A, Dilworth M (1992b) The role of iron in the (Brady) Rhizobium legume symbiosis. J Plant Nutr 15:2235–2252. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0176-1617(11)81028-X",{"doi":1113},{"id":20,"text":1118,"url":20,"identifiers":1119},"Tchichelle SV, Mareschal L, Koutika L-S, Epron D (2017) Biomass production, nitrogen accumulation and symbiotic nitrogen fixation in a mixed-species plantation of eucalypt and acacia on a nutrient-poor tropical soil. For Ecol Manage 403:103–111. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.foreco.2017.07.041",{"doi":1120},"10.1016\u002Fj.foreco.2017.07.041",{"id":20,"text":1122,"url":20,"identifiers":1123},"Tian H, Chen G, Zhang C, Melillo JM, Hall CAS (2009) Pattern and variation of C:N: P ratios in China’s soils: a synthesis of observational data. Biogeochemistry 98:139–151. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10533-009-9382-0",{"doi":1124},"10.1007\u002Fs10533-009-9382-0",{"id":20,"text":1126,"url":20,"identifiers":1127},"Varin S, Cliquet J-B, Personeni E, Avice J-C, Lemauviel-Lavenant S (2010) How does sulphur availability modify N acquisition of white clover (Trifolium repens L.)? J Exp Bot 61:225–234. https:\u002F\u002Fdoi.org\u002F10.1093\u002Fjxb\u002Ferp303",{"doi":1128},"10.1093\u002Fjxb\u002Ferp303",{"id":20,"text":1130,"url":20,"identifiers":1131},"Velagaleti RR, Marsh S (1989) Influence of host cultivars and Bradyrhizobium strains on the growth and symbiotic performance of soybean under salt stress. Plant Soil 119:133–138. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF02370277",{"doi":1132},"10.1007\u002FBF02370277",{"id":20,"text":1134,"url":20,"identifiers":1135},"Vinther F (2006) Effects of cutting frequency on plant production, N-uptake and N2 fixation in above-and below-ground plant biomass of perennial ryegrass–white clover swards. Grass Forage Sci 61:154–163. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2494.2006.00519.x",{"doi":1136},"10.1111\u002Fj.1365-2494.2006.00519.x",{"id":20,"text":1138,"url":20,"identifiers":1139},"Wu S, Liu Y, Bougoure JJ, Southam G, Chan T-S, Lu Y-R, Haw S-C, Nguyen TA, You F, Huang L (2019a) Organic matter amendment and plant colonization drive mineral weathering, organic carbon sequestration, and water-stable aggregation in magnetite Fe ore tailings. Environ Sci Technol 53:13720–13731. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.est.9b04526",{"doi":1140},"10.1021\u002Facs.est.9b04526",{"id":20,"text":1142,"url":20,"identifiers":1143},"Wu S, Liu Y, Southam G, Robertson L, Chiu TH, Cross AT, Dixon KW, Stevens JC, Zhong H, Chan T-S (2019b) Geochemical and mineralogical constraints in iron ore tailings limit soil formation for direct phytostabilization. Sci Total Environ 651:192–202. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.est.9b04526",{"doi":1140},{"id":20,"text":1145,"url":20,"identifiers":1146},"Wu S, You F, Hall M, Huang L (2021) Native plant Maireana brevifolia drives prokaryotic microbial community development in alkaline Fe ore tailings under semi-arid climatic conditions. Sci Total Environ 760:144019. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2020.144019",{"doi":1147},"10.1016\u002Fj.scitotenv.2020.144019",{"id":20,"text":1149,"url":20,"identifiers":1150},"Zahran HH (1999) Rhizobium-legume symbiosis and nitrogen fixation under severe conditions and in an arid climate. Microbiol Mol Biol Rev 63:968–989. https:\u002F\u002Fdoi.org\u002F10.1128\u002FMMBR.63.4.968-989.1999",{"doi":1151},"10.1128\u002FMMBR.63.4.968-989.1999",{"id":20,"text":1153,"url":20,"identifiers":1154},"Zheng M, Li D, Lu X, Zhu X, Zhang W, Huang J, Fu S, Lu X, Mo J (2016) Effects of phosphorus addition with and without nitrogen addition on biological nitrogen fixation in tropical legume and non-legume tree plantations. Biogeochemistry 131:65–76. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10533-016-0265-x",{"doi":1155},"10.1007\u002Fs10533-016-0265-x",{"id":20,"text":1157,"url":20,"identifiers":1158},"Zou N, Dart P, Marcar N (1995) Interaction of salinity and rhizobial strain on growth and N2-fixation by Acacia ampliceps. Soil Biol Biochem 27:409–413. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0038-0717(95)98611-Q",{"doi":1159},"10.1016\u002F0038-0717(95)98611-Q",{"id":1161,"createTime":1162,"updateTime":1162,"relativeEntities":1163,"slug":20,"properties":1164,"entityType":168,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1173,"fullTextUrl":20,"authors":1174,"publicationType":326,"publisherRelationship":1247,"citationCount":20,"citationInfo":20,"publishDate":1280,"publishYear":475,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":363},"868462a4-afe8-4c9c-b658-a0721ac7e09c","2024-02-15T23:55:38.766+00:00",[],{"references":1165,"abstract":1167,"title":1169,"doi":1171},{"VOID":1166},"Ademe (2018) La France indépendante en gaz en 2050. Un mix de gaz 100% renouvelable en 2050 ? Etude de faisabilité technico-économique. Rapport de l’étude. Available at: https:\u002F\u002Flibrairie.ademe.fr\u002Fenergies-renouvelables-reseaux-et-stockage\u002F1548-mix-de-gaz-100-renouvelable-en-2050--9791029710476.html\nBareha Y, Affes R, Moinard V, Buffet J, Girault R (2021) A simple mass balance tool to predict carbon and nitrogen fluxes in anaerobic digestion systems. Waste Manage 135:47–59. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.wasman.2021.08.020\nBrockmann D, Pradel M, Hélias A (2018) Agricultural use of organic residues in life cycle assessment: current practices and proposal for the computation of field emissions and of the nitrogen mineral fertilizer equivalent. Resour Conserv Recycl 133:50–62. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.resconrec.2018.01.034\nCavalli D, Corti M, Baronchelli D, Bechini L, Marino Gallina P (2017) CO2 emissions and mineral nitrogen dynamics following application to soil of undigested liquid cattle manure and digestates. Geoderma 308:26–35. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2017.08.027\nCayuela ML, Oenema O, Kuikman PJ, Bakker RR, Groenigen JWV (2010) Bioenergy by-products as soil amendments? Implications for carbon sequestration and greenhouse gas emissions. GCB Bioenergy 2:201–213. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1757-1707.2010.01055.x\nde la Fuente C, Alburquerque JA, Clemente R, Bernal MP (2013) Soil C and N mineralisation and agricultural value of the products of an anaerobic digestion system. Biol Fertil Soils 49:313–322. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00374-012-0719-9\nGuilayn F, Jimenez J, Martel J-L, Rouez M, Crest M, Patureau D (2019) First fertilizing-value typology of digestates: a decision-making tool for regulation. Waste Manage 86:67–79. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.wasman.2019.01.032\nHouot S, Pons MN, Pradel M (2014) Valorisation des matières fertilisantes d’origine résiduaire sur les sols à usage agricole ou forestier. Impacts agronomiques, environnementaux, socio-économiques. Rapport final de l’expertise scientifique collective. Available at : https:\u002F\u002Fwww.inrae.fr\u002Factualites\u002Fvalorisation-agricole-effluents-boues-dechets-organiques\nLashermes G, Nicolardot B, Parnaudeau V, Thuriès L, Chaussod R, Guillotin ML, Linères M, Mary B, Metzger L, Morvan T, Tricaud A, Villette C, Houot S (2009) Indicator of potential residual carbon in soils after exogenous organic matter application. Eur J Soil Sci 60:297–310. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2389.2008.01110.x\nLazicki P, Geisseler D, Lloyd M (2020) Nitrogen mineralization from organic amendments is variable but predictable. J Environ Qual 49:483–495. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fjeq2.20030\nLevavasseur F, Mary B, Christensen BT, Duparque A, Ferchaud F, Kätterer T, Lagrange H, Montenach D, Resseguier C, Houot S (2020) The simple AMG model accurately simulates organic carbon storage in soils after repeated application of exogenous organic matter. Nutr Cycl Agroecosyst. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10705-020-10065-x\nLevavasseur F, Lashermes G, Mary B, Morvan T, Nicolardot B, Parnaudeau V, Thuriès L, Houot S (2021) Quantifying and simulating carbon and nitrogen mineralization from diverse exogenous organic matters. Soil Use Manag 38:411–425. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fsum.12745\nMarsac S, Quod C, Leveau V, Heredia M, Delaye N, Labalette F, Lecomte V, Bazet M, Sanner EA (2019) Optimisation of French energy cover crop production in double cropping systems for on-farm biogas use. European Biomass Conference and Exhibition Proceedings 27th EUBCE-Lisbon 2019, 40–49. https:\u002F\u002Fdoi.org\u002F10.5071\u002F27thEUBCE2019-1AO.4.5\nMoinard V, Levavasseur F, Houot S (2021) Current and potential recycling of exogenous organic matter as fertilizers and amendments in a French peri-urban territory. Resour Conserv Recycl 169:105523. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.resconrec.2021.105523\nMöller K, Müller T (2012) Effects of anaerobic digestion on digestate nutrient availability and crop growth: a review. Eng Life Sci 12:242–257. https:\u002F\u002Fdoi.org\u002F10.1002\u002Felsc.201100085\nNkoa R (2014) Agricultural benefits and environmental risks of soil fertilization with anaerobic digestates: a review. Agron Sustain Dev 34:473–492. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs13593-013-0196-z\nR Development Core Team (2013) R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. ISBN 3–900051–07–0. http:\u002F\u002Fwww.R-project.org. Vienna, Austria\nRecous S, Robin D, Darwis D, Mary B (1995) Soil inorganic N availability: Effect on maize residue decomposition. Soil Biol Biochem 27:1529–1538. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0038-0717(95)00096-W\nReuland G, Sigurnjak I, Dekker H, Sleutel S, Meers E (2022) Assessment of the carbon and nitrogen mineralisation of digestates elaborated from distinct feedstock profiles. Agronomy 12:456. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fagronomy12020456\nRiau V, Burgos L, Camps F, Domingo F, Torrellas M, Antón A, Bonmatí A (2021) Closing nutrient loops in a maize rotation. Catch crops to reduce nutrient leaching and increase biogas production by anaerobic co-digestion with dairy manure. Waste Manage 126:719–727. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.wasman.2021.04.006\nRisberg K, Cederlund H, Pell M, Arthurson V, Schnürer A (2017) Comparative characterization of digestate versus pig slurry and cow manure – chemical composition and effects on soil microbial activity. Waste Manage 61:529–538. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.wasman.2016.12.016\nRiva C, Orzi V, Carozzi M, Acutis M, Boccasile G, Lonati S, Tambone F, D’Imporzano G, Adani F (2016) Short-term experiments in using digestate products as substitutes for mineral (N) fertilizer: agronomic performance, odours, and ammonia emission impacts. Sci Total Environ 547:206–214. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2015.12.156\nSzerencsits M, Weinberger C, Kuderna M, Feichtinger F, Erhart E, Maier S (2016) Biogas from cover crops and field residues: effects on soil, water, climate and ecological footprint. Int J Environ Ecol Eng 9:413–416. https:\u002F\u002Fdoi.org\u002F10.5281\u002Fzenodo.1126493\nTambone F, Orzi V, Zilio M, Adani F (2019) Measuring the organic amendment properties of the liquid fraction of digestate. Waste Manage 88:21–27. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.wasman.2019.03.024\nTuszynska A, Czerwionka K, Obarska-Pempkowiak H (2021) Phosphorus concentration and availability in raw organic waste and post fermentation products. J Environ Manage 278:111468. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jenvman.2020.111468\nVan Soest PJ, Wine RH (1967) Use of detergents in the analysis of fibrous feeds. IV. Determination of plant cell-wall constituents. J Assoc off Anal Chem 50:50–55\nWolf U, Fuß R, Höppner F, Flessa H (2014) Contribution of N2O and NH3 to total greenhouse gas emission from fertilization: results from a sandy soil fertilized with nitrate and biogas digestate with and without nitrification inhibitor. Nutr Cycl Agroecosyst 100:121–134. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10705-014-9631-z",{"EN":1168},"Cover crops are increasingly used for biogas production, a renewable energy source, without competing for food production. The behavior of the resulting digestates after soil application is poorly understood, which prevents their efficient recycling in agriculture and the environmental assessment of their application. The objective of this study was to quantify the nitrogen availability and potential carbon storage of cover crop–issued digestates after soil application. A total of 10 raw digestates, 2 liquid phases, and 3 solid phases after phase separation were sampled. Main cover crops used in the sampled biogas plants were winter barley, rye, and maize. Classical physicochemical analyses and laboratory incubations to study their C and N mineralization were conducted. Despite a moderate C mineralization of raw and liquid digestates after 91 days, their initial limited carbon content induced, in the end, a low contribution to soil organic carbon (13 and 11 kg remaining C Mg−1 FM, respectively), similar to a pig slurry and much lower than a bovine manure. With a higher initial carbon content and lower C mineralization, the contribution of solid digestates to carbon storage could be higher if applied at a sufficient rate. Organic N mineralization of raw and liquid digestates was moderate, but their N availability was high (3 and 4 kg available N Mg−1 FM, respectively), thanks to their mineral nitrogen contents, similar again to a pig slurry. In contrast, that of solid digestate was almost null with a very low mineral N content and no organic N mineralization. Finally, all the digestates also brought significant amounts of P and K.",{"EN":1170},"High Nitrogen Availability but Limited Potential Carbon Storage in Anaerobic Digestates from Cover Crops",{"VOID":1172},"10.1007\u002Fs42729-022-00853-5","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs42729-022-00853-5",[1175,1190,1205,1220,1235],{"id":1176,"sortIndex":204,"researcher":20,"roles":1177,"affiliations":1178,"properties":1187},"1a9b6478-b575-447b-bf0b-02d27af1298b",[176],[1179],{"id":20,"sortIndex":21,"affiliation":1180,"properties":20},{"id":1181,"createTime":1182,"updateTime":1182,"relativeEntities":1183,"slug":20,"properties":1184,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"1823f05a-d2f8-4cce-b903-51b70a21315f","2024-02-15T23:55:38.799+00:00",[],{"title":1185},{"VI":1186},"INRAE Transfert, Centre INRAE de Narbonne, Narbonne, France",{"title":1188},{"VI":1189},"Patrice Kouakou",{"id":1191,"sortIndex":258,"researcher":20,"roles":1192,"affiliations":1193,"properties":1202},"4dcdfedf-df32-4ebe-9096-71b90abc6ed9",[176],[1194],{"id":20,"sortIndex":21,"affiliation":1195,"properties":20},{"id":1196,"createTime":1197,"updateTime":1197,"relativeEntities":1198,"slug":20,"properties":1199,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"67d17229-013b-47d5-be7f-baa26acbcd6b","2024-02-15T23:55:38.789+00:00",[],{"title":1200},{"VI":1201},"LDAR, Laboratoire Départemental d’Analyses Et de Recherche de L’Aisne, Laon, France",{"title":1203},{"VI":1204},"Caroline Le Roux",{"id":1206,"sortIndex":302,"researcher":20,"roles":1207,"affiliations":1208,"properties":1217},"bee88c9f-57f4-4615-9779-b2320e3d27e6",[176],[1209],{"id":20,"sortIndex":21,"affiliation":1210,"properties":20},{"id":1211,"createTime":1212,"updateTime":1212,"relativeEntities":1213,"slug":20,"properties":1214,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"85928076-bf5d-4426-a61a-bea276e2b97a","2023-12-24T01:39:38.200+00:00",[],{"title":1215},{"VI":1216},"GRDF, Paris, France",{"title":1218},{"VI":1219},"Vincent Jean-Baptiste",{"id":1221,"sortIndex":21,"researcher":20,"roles":1222,"affiliations":1223,"properties":1232},"b8cfcf5e-fe36-4976-bad6-fc624e37b2e4",[176],[1224],{"id":20,"sortIndex":21,"affiliation":1225,"properties":20},{"id":1226,"createTime":1227,"updateTime":1227,"relativeEntities":1228,"slug":20,"properties":1229,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"6d4d33c7-b99d-4879-90ab-a62b34698949","2024-01-28T14:37:16.013+00:00",[],{"title":1230},{"VI":1231},"INRAE, AgroParisTech, Université Paris-Saclay, UMR ECOSYS, Thiverval-Grignon, France",{"title":1233},{"VI":1234},"Florent Levavasseur",{"id":1236,"sortIndex":191,"researcher":20,"roles":1237,"affiliations":1238,"properties":1244},"d2caa432-4686-4434-a85d-30a70f3e4aed",[176],[1239],{"id":20,"sortIndex":21,"affiliation":1240,"properties":20},{"id":1226,"createTime":1227,"updateTime":1227,"relativeEntities":1241,"slug":20,"properties":1242,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":1243},{"VI":1231},{"title":1245},{"VI":1246},"Sabine Houot",{"url":1173,"publisher":1248,"properties":1276},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1249,"slug":10,"properties":1250,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1254,"manageAffiliations":1255,"indexDatabases":1256,"url":115,"thumbnailPath":20,"statistic":1271,"gsStatistic":20,"type":148,"analyzePriority":20},[],{"issn":1251,"eissn":1252,"title":1253},{"VOID":13},{"VOID":15},{"EN":17},[],[],[1257,1264],{"id":74,"indexDatabase":1258,"url":87,"indexYears":88,"academicFieldIds":1263,"indexDatabaseRanking":93},{"id":76,"createTime":77,"updateTime":78,"relativeEntities":1259,"label":1260,"description":1261,"key":84,"publicationTags":1262,"standard":20},[],{"EN":81,"VI":81},{"EN":81,"VI":83},[86],[90,91,92],{"id":95,"indexDatabase":1265,"url":110,"indexYears":20,"academicFieldIds":1270,"indexDatabaseRanking":20},{"id":97,"createTime":98,"updateTime":99,"relativeEntities":1266,"label":1267,"description":1268,"key":106,"publicationTags":1269,"standard":20},[],{"EN":102,"VI":102},{"VI":104,"EN":105},[108,109],[112,113,114],{"impactFactor":21,"impactFactorByYear":1272,"i10Index":122,"i10IndexLast5Year":123,"totalPublication":124,"totalPublicationByYear":1273,"totalCitation":132,"totalCitationByYear":1274,"totalCitationPerPublication":139,"totalCitationPerPublicationByYear":1275,"hindexLast5Year":147,"hindex":147},{"2020":118,"2021":119,"2022":120,"2023":121},{"2019":126,"2020":127,"2021":128,"2022":129,"2023":130,"2024":131},{"2019":134,"2020":135,"2021":136,"2022":137,"2023":138,"2024":69},{"2019":141,"2020":142,"2021":143,"2022":144,"2023":145,"2024":146},{"volume":1277,"pages":1278},{"VOID":471},{"VOID":1279},"2891-2896","2022-04-27",{"id":1282,"createTime":1283,"updateTime":1284,"relativeEntities":1285,"slug":1286,"properties":1287,"entityType":168,"verifyStatus":169,"verifyTime":1284,"verifyNote":170,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1296,"fullTextUrl":20,"authors":1297,"publicationType":326,"publisherRelationship":1337,"citationCount":20,"citationInfo":20,"publishDate":1370,"publishYear":362,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":363},"5e5b199e-4bba-49a4-8683-0040b7271c75","2023-12-07T10:23:12.381+00:00","2024-12-10T23:53:51.276+00:00",[],"The-Effects-of-N-Addition-on-Soil-Microbial-Residues-in-Croplands-and-Forests-A-Meta-analysis",{"references":1288,"abstract":1290,"title":1292,"doi":1294},{"VOID":1289},"Algora Gallardo C, Baldrian P, Lopez-Mondejar R (2021) Litter-inhabiting fungi show high level of specialization towards biopolymers composing plant and fungal biomass. Biol Fertil Soils 57:77–88. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00374-020-01507-3\nAppuhn A, Joergensen RG (2006) Microbial colonisation of roots as a function of plant species. Soil Biol Biochem 38:1040–1051. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2005.09.002\nBragazza L, Buttler A, Habermacher J, Brancaleoni L, Gerdol R, Fritze H, Hanajik P, Laiho R, Johnson D (2012) High nitrogen deposition alters the decomposition of bog plant litter and reduces carbon accumulation. Glob Chang Biol 18:1163–1172. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2486.2011.02585.x\nBuckeridge KM, La Rosa AF, Mason KE, Whitaker J, McNamara NP, Grant HK, Ostle NJ (2020) Sticky dead microbes: Rapid abiotic retention of microbial necromass in soil. Soil Biol Biochem 149:107929. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2020.107929\nCotrufo MF, Wallenstein MD, Boot CM, Denef K, Paul E (2013) 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? Glob Chang Biol 19:988–995. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fgcb.12113\nDing X, Zhang X, He H, Xie H (2010) Dynamics of soil amino sugar pools during decomposition processes of corn residues as affected by inorganic N addition. J Soils Sediments 10:758–766. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11368-009-0132-7\nDing X, Liang C, Zhang B, Yuan Y, Han X (2015) Higher rates of manure application leads to greater accumulation of both fungal and bacterial residues in macroaggregates of a clay soil. Soil Biol Biochem 84:137–146. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2015.02.015\nEngelking B, Flessa H, Joergensen RG (2007) Shifts in amino sugar and ergosterol contents after addition of sucrose and cellulose to soil. Soil Biol Biochem 39:2111–2118. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2007.03.020\nHedges LV, Gurevitch J, Curtis PS (1999) The meta-analysis of response ratios in experimental ecology. Ecol 80:1150–1156. https:\u002F\u002Fdoi.org\u002F10.2307\u002F177062\nHu J, Huang C, Zhou S, Liu X, Dijkstra FA (2022) Nitrogen addition increases microbial necromass in croplands and bacterial necromass in forests: A global meta-analysis. Soil Biol Biochem 165:108500. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2021.108500\nJian S, Li J, Chen J, Wang G, Mayes MA, Dzantor KE, Hui D, Luo Y (2016) Soil extracellular enzyme activities, soil carbon and nitrogen storage under nitrogen fertilization: A meta-analysis. Soil Biol Biochem 101:32–43. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2016.07.003\nJiang J, Wang Y-P, Liu F, Du Y, Zhuang W, Chang Z, Yu M, Yan J (2021) Antagonistic and additive interactions dominate the responses of belowground carbon-cycling processes to nitrogen and phosphorus additions. Soil Biol Biochem 156:108216. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2021.108216\nJoergensen RG (2018) Amino sugars as specific indices for fungal and bacterial residues in soil. Biol Fertil Soils 54:559–568. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00374-018-1288-3\nKallenbach CM, Grandy AS, Frey SD, Diefendorf AF (2015) Microbial physiology and necromass regulate agricultural soil carbon accumulation. Soil Biol Biochem 91:279–290. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2015.09.005\nKätterer T, Bolinder MA, Berglund K, Kirchmann H (2012) Strategies for carbon sequestration in agricultural soils in northern Europe. Acta Agric Scand A Anim Sci 62:181–198. https:\u002F\u002Fdoi.org\u002F10.1080\u002F09064702.2013.779316\nLajeunesse MJ (2011) On the meta-analysis of response ratios for studies with correlated and multi-group designs. Ecol 92:2049–2055. https:\u002F\u002Fdoi.org\u002F10.1890\u002F11-0423.1\nLehmann J, Kleber M (2015) The contentious nature of soil organic matter. Nat 528:60–68. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fnature16069\nLi W, Jin C, Guan D, Wang Q, Wang A, Yuan F, Wu J (2015) The effects of simulated nitrogen deposition on plant root traits: A meta-analysis. Soil Biol Biochem 82:112–118. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2015.01.001\nLiang C, Schimel JP, Jastrow JD (2017) The importance of anabolism in microbial control over soil carbon storage. Nat Microbiol 2:17105. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fnmicrobiol.2017.105\nLiang C, Amelung W, Lehmann J, Kaestner M (2019) Quantitative assessment of microbial necromass contribution to soil organic matter. Glob Chang Biol 25:3578–3590. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fgcb.14781\nLiao S, Tan S, Peng Y (2020) Increased microbial sequestration of soil organic carbon under nitrogen deposition over China’s terrestrial ecosystems. Ecol Process 9:52. https:\u002F\u002Fdoi.org\u002F10.1186\u002Fs13717-020-00260-7\nManzoni S, Taylor P, Richter A, Porporato A, Agren GI (2012) Environmental and stoichiometric controls on microbial carbon-use efficiency in soils. New Phytol 196:79–91. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1469-8137.2012.04225.x\nMills MM, Moore CM, Langlois R, Milne A, Achterberg E, Nachtigall K, Lochte K, Geider RJ, La Roche J (2008) Nitrogen and phosphorus co-limitation of bacterial productivity and growth in the oligotrophic subtropical North Atlantic. Limnol Oceanogr 53:824–834. https:\u002F\u002Fdoi.org\u002F10.4319\u002Flo.2008.53.2.0824\nMooshammer M, Wanek W, Zechmeister-Boltenstern S, Richter A (2014) Stoichiometric imbalances between terrestrial decomposer communities and their resources: mechanisms and implications of microbial adaptations to their resources. Front Microbiol 5:22. https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffmicb.2014.00022\nPenuelas J, Poulter B, Sardans J, Ciais P, van der Velde M, Bopp L, Boucher O, Godderis Y, Hinsinger P, Llusia J, Nardin E, Vicca S, Obersteiner M, Janssens IA (2013) Human-induced nitrogen-phosphorus imbalances alter natural and managed ecosystems across the globe. Nat Commun 4:2934. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fncomms3934\nRousk J, Brookes PC, Bååth E (2009) Contrasting soil pH effects on fungal and bacterial growth suggest functional redundancy in carbon mineralization. Appl Environ Microbiol 75(6):1589–1596. https:\u002F\u002Fdoi.org\u002F10.1128\u002FAEM.02775-08\nSchimel JP, Schaeffer SM (2012) Microbial control over carbon cycling in soil. Front Microbiol 3:348. https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffmicb.2012.00348\nSimpson AJ, Simpson MJ, Smith E, Kelleher BP (2007) Microbially derived inputs to soil organic matter: are current estimates too low? Environ Sci Technol 41:8070–8076. https:\u002F\u002Fdoi.org\u002F10.1021\u002Fes071217x\nSpohn M, Poetsch EM, Eichorst SA, Woebken D, Wanek W, Richter A (2016) Soil microbial carbon use efficiency and biomass turnover in a long-term fertilization experiment in a temperate grassland. Soil Biol Biochem 97:168–175. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2016.03.008\nStrickland MS, Rousk J (2010) Considering fungal: bacterial dominance in soils – Methods, controls, and ecosystem implications. Soil Biol Biochem 42:1385–1395. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2010.05.007\nTreseder KK (2008) Nitrogen additions and microbial biomass: a meta-analysis of ecosystem studies. Ecol Lett 11:1111–1120. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1461-0248.2008.01230.x\nWang B, An S, Liang C, Liu Y, Kuzyakov Y (2021) Microbial necromass as the source of soil organic carbon in global ecosystems. Soil Biol Biochem 162:108422. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2021.108422\nYu G, Jia Y, He N, Zhu J, Chen Z, Wang Q, Piao S, Liu X, He H, Guo X, Wen Z, Li P, Ding G, Goulding K (2019) Stabilization of atmospheric nitrogen deposition in China over the past decade. Nat Geosci 12:424. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41561-019-0352-4\nZhang X, Amelung W (1996) Gas chromatographic determination of muramic acid, glucosamine, mannosamine, and galactosamine in soils. Soil Biol Biochem 28:1201–1206. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0038-0717(96)00117-4\nZhang W, Cui Y, Lu X, Bai E, He HB, Xie H, Liang C, Zhang XD (2016) High nitrogen deposition decreases the contribution of fungal residues to soil carbon pools in a tropical forest ecosystem. Soil Biol Biochem 97:211–214. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2016.03.019\nZhang X, Jia J, Chen L, Chu H, He JS, Zhang Y, Feng X (2021) Aridity and NPP constrain contribution of microbial necromass to soil organic carbon in the Qinghai-Tibet alpine grasslands. Soil Biol Biochem 156:108213. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2021.108213",{"EN":1291},"Nitrogen (N) availability in soil regulates microbial communities and then affects the decomposition and formation of microbial residues carbon (C), which have great impacts on soil organic carbon (SOC) sequestration. However, Asia has not yet well-assessed patterns and determinants of microbial residues C in response to N input. Here, we performed a large-scale, systematic meta-analysis of the effects of N addition on microbial residues across cropland and forest ecosystems. A total of 31 publications regarding microbial residues were included in our database, with 235 observations. In croplands N addition significantly increased microbial residue and biomass, and total microbial residue contribution to SOC. The responses to N addition of microbial residues and biomass increased with N addition rate (0–800 kg N ha−1 year−1) and there was a bidirectional positive effect between these two. In forest ecosystems, bacterial residues increased by 14.7% in N addition rates of 0–50 kg N ha−1 year−1. Moreover, the negative correlation between the duration of N addition and microbial residues is highly significant, indicating that long-term N deposition could threaten SOC transformation and sequestration in forests. These results suggest that N addition effects on microbial residues are ecosystem-specific. This is related to the different main controlling factors affecting the microbial residues in cropland and forest ecosystems under N addition.",{"EN":1293},"The Effects of N Addition on Soil Microbial Residues in Croplands and Forests: A Meta-analysis",{"VOID":1295},"10.1007\u002Fs42729-023-01189-4","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs42729-023-01189-4",[1298,1313,1325],{"id":1299,"sortIndex":21,"researcher":20,"roles":1300,"affiliations":1301,"properties":1310},"aa73a8d9-61b6-4b85-9cf9-25236f55640c",[176],[1302],{"id":20,"sortIndex":21,"affiliation":1303,"properties":20},{"id":1304,"createTime":1305,"updateTime":1305,"relativeEntities":1306,"slug":20,"properties":1307,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"c9bf5c22-906d-4b93-bec7-7c408f71a9f4","2024-01-13T01:59:54.581+00:00",[],{"title":1308},{"VI":1309},"School of Applied Meteorology, Nanjing University of Information Science and Technology, Nanjing, China",{"title":1311},{"VI":1312},"Qi Chen",{"id":1314,"sortIndex":204,"researcher":20,"roles":1315,"affiliations":1316,"properties":1322},"590a4889-a41a-4518-9b1b-8fa35566e654",[176],[1317],{"id":20,"sortIndex":21,"affiliation":1318,"properties":20},{"id":1304,"createTime":1305,"updateTime":1305,"relativeEntities":1319,"slug":20,"properties":1320,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":1321},{"VI":1309},{"title":1323},{"VI":1324},"Bin 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of Acid-Resistant Purple Nonsulfur Bacteria from Peat Swamp Forests to Apply as Biofertilizers and Biocontrol Agents",{"VOID":1387},"10.1007\u002Fs42729-019-00044-9","2024-12-23T23:53:19.534+00:00",[685],"http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs42729-019-00044-9",[1392,1409,1423,1437,1458,1478],{"id":1393,"sortIndex":21,"researcher":20,"roles":1394,"affiliations":1395,"properties":1404},"f2a1d16a-0218-4444-b233-a5941caaf2f1",[],[1396],{"id":20,"sortIndex":21,"affiliation":1397,"properties":20},{"id":1398,"createTime":1399,"updateTime":1399,"relativeEntities":1400,"slug":20,"properties":1401,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"3ebe7599-5cf4-4bcc-aead-aa0a15ac5043","2023-12-31T11:11:46.384+00:00",[],{"title":1402},{"VI":1403},"Department of Microbiology, Faculty of Science, Prince of Songkla University, Hat Yai, 90112, Thailand",{"openalex":1405,"title":1407},{"VOID":1406},"A5007251970",{"EN":1408},"Phitthaya Nookongbut",{"id":1410,"sortIndex":302,"researcher":20,"roles":1411,"affiliations":1412,"properties":1418},"c2cc8bab-99c3-4ad8-bd9c-499382a348e0",[],[1413],{"id":20,"sortIndex":21,"affiliation":1414,"properties":20},{"id":1398,"createTime":1399,"updateTime":1399,"relativeEntities":1415,"slug":20,"properties":1416,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":1417},{"VI":1403},{"openalex":1419,"title":1421},{"VOID":1420},"A5040791245",{"EN":1422},"Ampaitip 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M, Kibret M (2014) Mechanisms and applications of plant growth promoting rhizobacteria: current perspective. J King Saud Univ Sci 26:1–20",{"doi":1538},"10.1016\u002Fj.jksus.2013.05.001",{"id":20,"text":1540,"url":20,"identifiers":1541},"Ahmad F, Ahmad I, Khan MS (2005) Indole acetic acid production by the indigenous isolates of Azotobacter and fluorescent Pseudomonas in the presence and absence of tryptophan. Turk J Biol 29:29–34",{},{"id":20,"text":1543,"url":20,"identifiers":1544},"Attanandana T, Vacharotayan S (1986) Acid sulfate soils: their characteristics, genesis, amelioration and utilization. J Southeast Asian Stud 242:154–180",{},{"id":20,"text":1546,"url":20,"identifiers":1547},"Burnham BF (1970) δ-Aminolevulinic acid synthase (from Rhodopseudomonas sphaeroides). Methods Enzymol 17:195–204",{"doi":1548},"10.1016\u002F0076-6879(71)17179-0",{"id":20,"text":1550,"url":20,"identifiers":1551},"Chukwamdee J, Anansiriwat A, Meepol W, Jintanugool J, Havanon S (1999) Study on distribution of swamp forest in Thailand. Thai J For 1:23–32",{},{"id":20,"text":1553,"url":20,"identifiers":1554},"Compant S, Duffy B, Nowak J, Clément C, Barka EA (2005) Use of plant growth-promoting bacteria for biocontrol of plant diseases: principles, mechanisms of action, and future prospects. Appl Environ Microbiol 71(9):4951–4959",{"doi":1555},"10.1128\u002FAEM.71.9.4951-4959.2005",{"id":20,"text":1557,"url":20,"identifiers":1558},"Cui Z, Wang P, Wang Q (2005) Application effect of most probable number (MPN) method in photosynthetic bacteria counting. Ying Yong Sheng Tai Xue Bao 16(8):1577–1580",{},{"id":20,"text":1560,"url":20,"identifiers":1561},"Donati AJ, Lee HI, Leveau JHJ, Chang WS (2013) Effects of indole-3-acetic acid on the transcriptional activities and stress tolerance of Bradyrhizobium japonicum. PLoS One 8(10):e76559",{"doi":1562},"10.1371\u002Fjournal.pone.0076559",{"id":20,"text":1564,"url":20,"identifiers":1565},"Durán P, Viscardi S, Acuña JJ, Cornejo P, Azcón R, de la Luz Mora M (2018) Endophytic selenobacteria and arbuscular mycorrhizal fungus for selenium biofortification and Gaeumannomyces graminis biocontrol. J Soil Sci Plant Nutr. \n                    https:\u002F\u002Fdoi.org\u002F10.4067\u002FS0718-95162018005002902",{"doi":1566},"10.4067\u002FS0718-95162018005002902",{"id":20,"text":1568,"url":20,"identifiers":1569},"Etto RM, Cruz LM, Jesus EC, Galvão CW, Galvão F, Souza EM, Pedrosa FO, Steffens MBR (2012) Prokaryotic communities of acidic peatlands from the southern Brazilian Atlantic Forest. Braz J Microbiol 43(2):661–674",{"doi":1570},"10.1590\u002FS1517-83822012000200031",{"id":20,"text":1572,"url":20,"identifiers":1573},"Glenn AR, Dilworth MJ (1991) Soil acidity and the microbial population: survival and growth of bacteria in low pH. In: Wright RJ, Baligar VC, Murrmann RP (eds) Plant–soil interactions at low pH. Developments in plant and soil sciences, vol 45. Springer, Dordrecht, pp 567–579",{"doi":1574},"10.1007\u002F978-94-011-3438-5_64",{"id":20,"text":1576,"url":20,"identifiers":1577},"Horneck DA, Sullivan DM, Owen JS, Hart JM (2011) Soil test interpretation guide, EC 1478. Oregon State University Extension Service, Corvallis",{},{"id":20,"text":1579,"url":20,"identifiers":1580},"Kadurugamuwa JL, Sin L, Albert E, Yu J, Francis K, De Boer M, Rubin M, Bellinger-Kawahara C, Parr TR Jr, Contag PR (2003) Direct continuous method for monitoring biofilm infection in a mouse model. Infect Immun 71(2):882–890",{"doi":1581},"10.1128\u002FIAI.71.2.882-890.2003",{"id":20,"text":1583,"url":20,"identifiers":1584},"Kantachote D, Nunkaew T, Kantha T, Chaiprapat S (2016) Biofertilizers from Rhodopseudomonas palustris strains to enhance rice yields and reduce methane emissions. Appl Soil Ecol 100:154–161",{"doi":1585},"10.1016\u002Fj.apsoil.2015.12.015",{"id":20,"text":1587,"url":20,"identifiers":1588},"Karimian N, Johnston SG, Burton ED (2018) Iron and sulfur cycling in acid sulfate soil wetlands under dynamic redox conditions: a review. Chemosphere 197:803–816",{"doi":1589},"10.1016\u002Fj.chemosphere.2018.01.096",{"id":20,"text":1591,"url":20,"identifiers":1592},"Khuong NQ, Kantachote D, Onthong J, Xuan LN, Sukhoom A (2018) Enhancement of rice growth and yield in actual acid sulfate soils by potent acid-resistant Rhodopseudomonas palustris strains for producing safe rice. Plant Soil 429:483–501",{"doi":1593},"10.1007\u002Fs11104-018-3705-7",{"id":20,"text":1595,"url":20,"identifiers":1596},"Lappalainen E (1996) Global peat resources. International Peat Society, Finland, pp 53–281",{},{"id":20,"text":1598,"url":20,"identifiers":1599},"Liu M, Liu X, Cheng B, Ma X, Lyu X, Zhao X, Ju Y, Min Z, Fang Y (2017) Selection and evaluation of phosphate-solubilizing bacteria from grapevine rhizospheres for use as biofertilizers. Span J Agric Res 14(4):e1106",{"doi":1600},"10.5424\u002Fsjar\u002F2016144-9714",{"id":20,"text":1602,"url":20,"identifiers":1603},"Madigan MT, Jung DO (2009) The purple phototrophic bacteria. In: Hunter CN, Daldal F, Thurnauer MC, Beatty JT (eds) The purple phototrophic bacteria. Springer, Dordrecht, pp 1–15",{},{"id":20,"text":1605,"url":20,"identifiers":1606},"Matsuoka H, Akiyama M, Kobayashi K, Yamaji K (2013) Fe and P solubilization under limiting conditions by bacteria isolated from Carex kobomugi roots at the Hasaki coast. Curr Microbiol 66(3):314–321",{"doi":1607},"10.1007\u002Fs00284-012-0276-3",{"id":20,"text":1609,"url":20,"identifiers":1610},"Nguyen KQ, Kantachote D, Onthong J, Sukhoom A (2018) Al3+ and Fe2+ toxicity reduction potential by acid-resistant strains of Rhodopseudomonas palustris isolated from acid sulfate soils under acidic conditions. Ann Microbiol 68:217–228",{"doi":1611},"10.1007\u002Fs13213-018-1332-4",{"id":20,"text":1613,"url":20,"identifiers":1614},"Nookongbut P, Kantachote D, Megharaj M (2016) Arsenic contamination in areas surrounding mines and selection of potential As-resistant purple nonsulfur bacteria for use in bioremediation based on their detoxification mechanisms. Ann Microbiol 66(4):1419–1429",{"doi":1615},"10.1007\u002Fs13213-016-1229-z",{"id":20,"text":1617,"url":20,"identifiers":1618},"Nookongbut P, Kantachote D, Megharaj M, Naidu R (2018) Reduction in arsenic toxicity and uptake in rice (Oryza sativa L.) by As-resistant purple nonsulfur bacteria. Environ Sci Pollut Res 25:36530–36544",{"doi":1619},"10.1007\u002Fs11356-018-3568-8",{"id":20,"text":1621,"url":20,"identifiers":1622},"Nunkaew T, Kantachote D, Nitoda T, Kanzaki H (2012) The use of rice straw broth as an appropriate medium to isolate purple nonsulfur bacteria from paddy fields. Electron J Biotechnol 15(6). \n                    https:\u002F\u002Fdoi.org\u002F10.2225\u002Fvol15-issue6-fulltext-8",{"doi":1623},"10.2225\u002Fvol15-issue6-fulltext-8",{"id":20,"text":1625,"url":20,"identifiers":1626},"Nunkaew T, Kantachote D, Kanzaki H, Nitoda T, Ritchie RJ (2014) Effects of 5-ALA containing supernatants from selected Rhodopseudomonas palustris strains on rice growth under NaCl stress, with mediating effects on chlorophyll, photosynthetic electron transport and antioxidative enzymes. Electron J Biotechnol 17:19–26",{"doi":1627},"10.1016\u002Fj.ejbt.2013.12.004",{"id":20,"text":1629,"url":20,"identifiers":1630},"Ormerod JG, Ormerod KS, Gest H (1961) Light-dependent utilization of organic compounds and photoproduction of molecular hydrogen by photosynthetic bacteria; relationships with nitrogen metabolism. Arch Biochem Biophys 94(3):449–463",{"doi":1631},"10.1016\u002F0003-9861(61)90073-X",{"id":20,"text":1633,"url":20,"identifiers":1634},"Rousk J, Brookes PC, Bååth E (2009) Contrasting soil pH effects on fungal and bacterial growth suggest functional redundancy in carbon mineralization. Appl Environ Microbiol 75(6):1589–1596",{"doi":1635},"10.1128\u002FAEM.02775-08",{"id":20,"text":1637,"url":20,"identifiers":1638},"Sakpirom J, Kantachote D, Nunkaew T, Khan E (2017) Characterizations of purple non-sulfur bacteria isolated from paddy fields, and identification of strains with potential for plant growth-promotion, greenhouse gas mitigation and heavy metal bioremediation. Res Microbiol 168(3):266–275",{"doi":1639},"10.1016\u002Fj.resmic.2016.12.001",{"id":20,"text":1641,"url":20,"identifiers":1642},"Sasirekha B, Srividya S (2016) Siderophore production by Pseudomonas aeruginosa FP6, a biocontrol strain for Rhizoctonia solani and Colletotrichum gloeosporioides causing diseases in chilli. Agric Nat Resour 50(4):250–256",{},{"id":20,"text":1644,"url":20,"identifiers":1645},"Sasirekha B, Shivakumar S, Sullia SB (2012) Statistical optimization for improved indole-3-acetic acid (IAA) production by Pseudomonas aeruginosa and demonstration of enhanced plant growth promotion. J Soil Sci Plant Nutr 12(4):863–873",{},{"id":20,"text":1647,"url":20,"identifiers":1648},"Shamshuddin J, Panhwar QA, Alia FJ, Shazana MARS, Radziah O, Fauziah CI (2017) Formation and utilisation of acid sulfate soils in Southeast Asia for sustainable rice cultivation. Pertanika J Trop Agric Sci 40(2):225–246",{},{"id":20,"text":1650,"url":20,"identifiers":1651},"Shawky BT, Mahmoud MG, Ghazy EA, Asker MM, Ibrahim GS (2011) Enzymatic hydrolysis of rice straw and corn stalks for monosugars production. J Genet Eng Biotechnol 9(1):59–63",{"doi":1652},"10.1016\u002Fj.jgeb.2011.05.001",{"id":20,"text":1654,"url":20,"identifiers":1655},"Zhang WF, Zhang F, Raziuddin R, Gong HJ, Yang ZM, Lu L, Ye QF, Zhou WJ (2008) Effects of 5-aminolevulinic acid on oilseed rape seedling growth under herbicide toxicity stress. 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RS, Poll C, Kandeler E (2018) Dynamics of soil respiration and microbial communities: interactive controls of temperature and substrate quality. Soil Biol Biochem 127:60–70. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2018.09.010",{"doi":1766},"10.1016\u002Fj.soilbio.2018.09.010",{"id":20,"text":1768,"url":20,"identifiers":1769},"Bárcenas-Moreno G, Gómez-Brandón M, Rousk J, Bååth E (2009) Adaptation of soil microbial communities to temperature: comparison of fungi and bacteria in a laboratory experiment. Glob Change Biol 15:2950–2957. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2486.2009.01882.x",{"doi":1770},"10.1111\u002Fj.1365-2486.2009.01882.x",{"id":20,"text":1772,"url":20,"identifiers":1773},"Bradford MA (2013) Thermal adaptation of decomposer communities in warming soils. Front Microbiol 4:333. https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffmicb.2013.00333",{"doi":1774},"10.3389\u002Ffmicb.2013.00333",{"id":20,"text":1776,"url":20,"identifiers":1777},"Bradford MA, Davies CA, Frey SD, Maddox TR, Melillo JM, Mohan JE, Reynolds JF, Treseder KK, Wallenstein MD (2008) Thermal adaptation of soil microbial respiration to elevated temperature. Ecol Lett 11:1316–1327. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1461-0248.2008.01251.x",{"doi":1778},"10.1111\u002Fj.1461-0248.2008.01251.x",{"id":20,"text":1780,"url":20,"identifiers":1781},"Bradford MA, Wieder WR, Bonan GB, Fierer N, Raymond PA, Crowther TW (2016) Managing uncertainty in soil carbon feedbacks to climate change. Nature Clim Change 6:751–758. https:\u002F\u002Fdoi.org\u002F10.1038\u002FNCLIMATE3071",{"doi":1782},"10.1038\u002FNCLIMATE3071",{"id":20,"text":1784,"url":20,"identifiers":1785},"Carey JC, Tang J, Templer PH, Kroeger KD, Crowther TW, Burton AJ, Dukes JS, Emmett B, Frey SD, Heskel MA (2016) Temperature response of soil respiration largely unaltered with experimental warming. Proc Natl Acad Sci 113:13797–13802. https:\u002F\u002Fdoi.org\u002F10.1073\u002Fpnas.1605365113",{"doi":1786},"10.1073\u002Fpnas.1605365113",{"id":20,"text":1788,"url":20,"identifiers":1789},"Cavicchioli R, Ripple WJ, Timmis KN, Azam F, Bakken LR, Baylis M, Behrenfeld MJ, Boetius A, Boyd PW, Classen AT (2019) Scientists’ warning to humanity: microorganisms and climate change. Nat Rev Microbiol 17:569–586. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41579-019-0222-5",{"doi":1790},"10.1038\u002Fs41579-019-0222-5",{"id":20,"text":1792,"url":20,"identifiers":1793},"Chen Z, Zhao D, Zhu Y, Zhang R, Guo C (2022) Response of grassland soil respiration to experimental warming: the long-term effects may be greater than we thought. Soil Biol Biochem 168:108616. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2022.108616",{"doi":1794},"10.1016\u002Fj.soilbio.2022.108616",{"id":20,"text":1796,"url":20,"identifiers":1797},"Christensen JH, Hewitson A, Busuioc A, Chen A, Gao X, Held I, Jones R, Kolli RK, Kwon WT, Laprise R, Magaña Rueda V, Mearns L, Menéndez CG, Räisänen J, Rinke A, Sarr A, Whetton P (2007) Regional climate projections. In: Solomon S et al (eds) Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA",{},{"id":20,"text":1799,"url":20,"identifiers":1800},"CONAGUA (2018) Comisión Nacional del Agua, Servicio Meteorológico Nacional. Normales climatológicas (National Water Commission, National Meteorological Service. Climatological normals) 1907-2013. In: Station: 00005044 Cuatro Cienegas, Coahuila. Available via https:\u002F\u002Fsmn.conagua.gob.mx\u002Fes\u002Fclimatologia\u002Finformacion-climatologica\u002Finformacion-estadistica-climatologica",{},{"id":20,"text":1802,"url":20,"identifiers":1803},"Dacal M, Bradford MA, Plaza C, Maestre FT, García-Palacios P (2019) Soil microbial respiration adapts to ambient temperature in global drylands. Nat Ecol Evol 3:232–238. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41559-018-0770-5",{"doi":1804},"10.1038\u002Fs41559-018-0770-5",{"id":20,"text":1806,"url":20,"identifiers":1807},"Davidson EA, Janssens IA (2006) Temperature sensitivity of soil carbon decomposition and feedbacks to climate change. Nature 440:165–173. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fnature04514",{"doi":1808},"10.1038\u002Fnature04514",{"id":20,"text":1810,"url":20,"identifiers":1811},"Feng J, Wang J, Ding L, Yao P, Qiao M, Yao S (2017) Meta-analyses of the effects of major global change drivers on soil respiration across China. Atmos Environ 150:181–186. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.atmosenv.2016.11.060",{"doi":1812},"10.1016\u002Fj.atmosenv.2016.11.060",{"id":20,"text":1814,"url":20,"identifiers":1815},"Flanagan LB, Sharp EJ, Letts MG (2013) Response of plant biomass and soil respiration to experimental warming and precipitation manipulation in a Northern Great Plains grassland. Agric Forest Meteorol 173:40–52. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.agrformet.2013.01.002",{"doi":1816},"10.1016\u002Fj.agrformet.2013.01.002",{"id":20,"text":1818,"url":20,"identifiers":1819},"Giasson M-A, Ellison AM, Bowden RD, Crill PM, Davidson EA, Drake JE, Frey SD, Hadley JL, Lavine M, Melillo JM (2013) Soil respiration in a northeastern US temperate forest: a 22-year synthesis. Ecosphere 4:1–28. https:\u002F\u002Fdoi.org\u002F10.1890\u002FES13.00183.1",{"doi":1820},"10.1890\u002FES13.00183.1",{"id":20,"text":1822,"url":20,"identifiers":1823},"Granados-Sánchez D, Sánchez-González A, Victorino G, Linnx R, Borja de la Rosa A (2011) Ecología de la vegetación del desierto chihuahuense (Vegetation ecology of the Chihuahuan desert). Rev Chapingo Ser Cienc For Ambient 17:111–130. https:\u002F\u002Fdoi.org\u002F10.5154\u002Fr.rchscfa.2010.10.102",{"doi":1824},"10.5154\u002Fr.rchscfa.2010.10.102",{"id":20,"text":1826,"url":20,"identifiers":1827},"Gutknecht JL, Field CB, Balser TC (2012) Microbial communities and their responses to simulated global change fluctuate greatly over multiple years. Glob Change Biol 18:2256–2269. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2486.2012.02686.x",{"doi":1828},"10.1111\u002Fj.1365-2486.2012.02686.x",{"id":20,"text":1830,"url":20,"identifiers":1831},"Hamdi S, Chevallier T, Aïssa NB, Hammouda MB, Gallali T, Chotte J-L, Bernoux M (2011) Short-term temperature dependence of heterotrophic soil respiration after one-month of pre-incubation at different temperatures. Soil Biol Biochem 43:1752–1758. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2010.05.025",{"doi":1832},"10.1016\u002Fj.soilbio.2010.05.025",{"id":20,"text":1834,"url":20,"identifiers":1835},"Hernández-Becerra N, Tapia-Torres Y, Beltrán-Paz O, Blaz J, Souza V, García-Oliva F (2016) Agricultural land-use change in a Mexican oligotrophic desert depletes ecosystem stability. PeerJ 4:e2365. https:\u002F\u002Fdoi.org\u002F10.7717\u002Fpeerj.2365",{"doi":1836},"10.7717\u002Fpeerj.2365",{"id":20,"text":1838,"url":20,"identifiers":1839},"Hou R, Ouyang Z, Maxim D, Wilson G, Kuzyakov Y (2016) Lasting effect of soil warming on organic matter decomposition depends on tillage practices. Soil Biol Biochem 95:243–249. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2015.12.008",{"doi":1840},"10.1016\u002Fj.soilbio.2015.12.008",{"id":20,"text":1842,"url":20,"identifiers":1843},"INEGI (2007) Conjunto de datos vectorial edafológico (Pedological vector data set). In: Scale 1:250000. Series II. National Continuous. National Institute of Statistics and Geography, Aguascalientes, Mexico. Available via https:\u002F\u002Fwww.inegi.org.mx\u002Fapp\u002Fbiblioteca\u002Fficha.html?upc=702825235673",{},{"id":20,"text":1845,"url":20,"identifiers":1846},"IPCC (2000) Land Use, Land-Use Change, and Forestry. Cambridge University Press, UK",{},{"id":20,"text":1848,"url":20,"identifiers":1849},"Knorr W, Prentice IC, House JI, Holland EA (2005) Long-term sensitivity of soil carbon turnover to warming. Nature 433:298–301. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fnature03226",{"doi":1850},"10.1038\u002Fnature03226",{"id":20,"text":1852,"url":20,"identifiers":1853},"Lai L, Zhao X, Jiang L, Wang Y, Luo L, Zheng Y, Chen X, Rimmington GM (2012) Soil respiration in different agricultural and natural ecosystems in an arid region. PLoS One 7:e48011. https:\u002F\u002Fdoi.org\u002F10.1371\u002Fjournal.pone.0048011",{"doi":1854},"10.1371\u002Fjournal.pone.0048011",{"id":20,"text":1856,"url":20,"identifiers":1857},"Liu T, Xu Z-Z, Hou Y-H, Zhou G-S (2016) Effects of warming and changing precipitation rates on soil respiration over two years in a desert steppe of northern China. Plant Soil 400:15–27. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11104-015-2705-0",{"doi":1858},"10.1007\u002Fs11104-015-2705-0",{"id":20,"text":1860,"url":20,"identifiers":1861},"Luo Y, Wan S, Hui D, Wallace LL (2001) Acclimatization of soil respiration to warming in a tall grass prairie. Nature 413:622–625. https:\u002F\u002Fdoi.org\u002F10.1038\u002F35098065",{"doi":1862},"10.1038\u002F35098065",{"id":20,"text":1864,"url":20,"identifiers":1865},"Melillo JM, Steudler P, Aber JD, Newkirk K, Lux H, Bowles F, Catricala C, Magill A, Ahrens T, Morrisseau S (2002) Soil warming and carbon-cycle feedbacks to the climate system. Science 298:2173–2176. https:\u002F\u002Fdoi.org\u002F10.1126\u002Fscience.1074153",{"doi":1866},"10.1126\u002Fscience.1074153",{"id":20,"text":1868,"url":20,"identifiers":1869},"Metcalfe DB, Meir P, Aragao L, Malhi Y, Da Costa A, Braga A, Gonçalves P, de Athaydes J, De Almeida S, Williams M (2007) Factors controlling spatio-temporal variation in carbon dioxide efflux from surface litter, roots, and soil organic matter at four rain forest sites in the eastern Amazon. J Geophys Res 112. https:\u002F\u002Fdoi.org\u002F10.1029\u002F2007JG000443",{"doi":1870},"10.1029\u002F2007JG000443",{"id":20,"text":1872,"url":20,"identifiers":1873},"Mikan CJ, Schimel JP, Doyle AP (2002) Temperature controls of microbial respiration in arctic tundra soils above and below freezing. Soil Biol Biochem 34:1785–1795. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0038-0717(02)00168-2",{"doi":1874},"10.1016\u002FS0038-0717(02)00168-2",{"id":20,"text":1876,"url":20,"identifiers":1877},"Montiel-González C, Bautista F, Delgado C, García-Oliva F (2018) The climate of Cuatro Ciénegas Basin: drivers and temporal patterns. In: Souza V, Olmedo-Álvarez G, Eguiarte LE (eds) Cuatro Ciénegas Ecology. Natural History and Microbiology. Springer International Publishing, Cham, pp 35–42. https:\u002F\u002Fdoi.org\u002F10.1007\u002F978-3-319-93423-5_3",{"doi":1878},"10.1007\u002F978-3-319-93423-5_3",{"id":20,"text":1880,"url":20,"identifiers":1881},"Muñoz Iniestra DJ, Ferreira Ramírez M, Escalante Arriaga IB, López García J (2013) Relationship between land cover and physical and biological degredation an alluvial soil in a semiarid region. Terra Latinoam 31:201–210",{},{"id":20,"text":1883,"url":20,"identifiers":1884},"Naylor D, Sadler N, Bhattacharjee A, Graham EB, Anderton CR, McClure R, Lipton M, Hofmockel KS, Jansson JK (2020) Soil microbiomes under climate change and implications for carbon cycling. Annu Rev Environ Resour 45:29–59. https:\u002F\u002Fdoi.org\u002F10.1146\u002Fannurev-environ-012320-082720",{"doi":1885},"10.1146\u002Fannurev-environ-012320-082720",{"id":20,"text":1887,"url":20,"identifiers":1888},"NOM-021-RECNAT-2000 (2002) Especificaciones de fertilidad, salinidad y clasificación de suelos. Estudios, muestreo y análisis. Secretaría de Medio Ambiente y Recursos Naturales. In: Diario Oficial de la Federación, Segunda sección (Specifications of fertility, salinity and soil classification. Studies, sampling and analysis. Ministry of Environment and Natural Resources. Official Gazette of the Federation, Second section), Mexico. Available vía: http:\u002F\u002Fwww.ordenjuridico.gob.mx\u002FDocumentos\u002FFederal\u002Fwo69255.pdf",{},{"id":20,"text":1890,"url":20,"identifiers":1891},"Pansu M, Gautheyrou J (2007) Handbook of soil analysis: mineralogical, organic and inorganic methods. Springer Science & Business Media, France",{},{"id":20,"text":1893,"url":20,"identifiers":1894},"Rietz DN, Haynes RJ (2003) Effects of irrigation-induced salinity and sodicity on soil microbial activity. Soil Biol Biochem 35:845–854. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0038-0717(03)00125-1",{"doi":1895},"10.1016\u002FS0038-0717(03)00125-1",{"id":20,"text":1897,"url":20,"identifiers":1898},"Salehi MH, Beni OH, Harchegani HB, Borujeni IE, Motaghian HR (2011) Refining soil organic matter determination by loss-on-ignition. Pedosphere 21:473–482. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS1002-0160(11)60149-5",{"doi":1899},"10.1016\u002FS1002-0160(11)60149-5",{"id":20,"text":1901,"url":20,"identifiers":1902},"Schimel JP (2018) Life in dry soils: effects of drought on soil microbial communities and processes. Annu Rev Ecol, Evol Syst 49:409–432. https:\u002F\u002Fdoi.org\u002F10.1146\u002Fannurev-ecolsys-110617-062614",{"doi":1903},"10.1146\u002Fannurev-ecolsys-110617-062614",{"id":20,"text":1905,"url":20,"identifiers":1906},"Sharkhuu A, Plante AF, Enkhmandal O, Gonneau C, Casper BB, Boldgiv B, Petraitis PS (2016) Soil and ecosystem respiration responses to grazing, watering and experimental warming chamber treatments across topographical gradients in northern Mongolia. Geoderma 269:91–98. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2016.01.041",{"doi":1907},"10.1016\u002Fj.geoderma.2016.01.041",{"id":20,"text":1909,"url":20,"identifiers":1910},"Shi A, Zhou X, Yao S, Zhang B (2020) Effects of intensities and cycles of heating on mineralization of organic matter and microbial community composition of a Mollisol under different land use types. Geoderma 357:113941. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2019.113941",{"doi":1911},"10.1016\u002Fj.geoderma.2019.113941",{"id":20,"text":1913,"url":20,"identifiers":1914},"SIAP (2019) Anuario estadístico de la producción agrícola (Statistical yearbook of agricultural production). Available via https:\u002F\u002Fnube.siap.gob.mx\u002Fcierreagricola\u002F",{},{"id":20,"text":1916,"url":20,"identifiers":1917},"Sierra CA, Trumbore SE, Davidson EA, Vicca S, Janssens I (2015) Sensitivity of decomposition rates of soil organic matter with respect to simultaneous changes in temperature and moisture. J Adv in Model Earth Syst 7:335–356. https:\u002F\u002Fdoi.org\u002F10.1002\u002F2014MS000358",{"doi":1918},"10.1002\u002F2014MS000358",{"id":20,"text":1920,"url":20,"identifiers":1921},"Singh BP, Cowie A, Chan KY (2011a) Soil health and climate change, vol 29. Springer Science & Business Media, Berlin Heidelberg",{"doi":1922},"10.1007\u002F978-3-642-20256-8",{"id":20,"text":1924,"url":20,"identifiers":1925},"Vogel JG, Bronson D, Gower ST, Schuur EA (2014) The response of root and microbial respiration to the experimental warming of a boreal black spruce forest. Can J For Res 44:986–993. https:\u002F\u002Fdoi.org\u002F10.1139\u002Fcjfr-2014-0056",{"doi":1926},"10.1139\u002Fcjfr-2014-0056",{"id":20,"text":1928,"url":20,"identifiers":1929},"Walker TW, Kaiser C, Strasser F, Herbold CW, Leblans NI, Woebken D, Janssens IA, Sigurdsson BD, Richter A (2018) Microbial temperature sensitivity and biomass change explain soil carbon loss with warming. Nature Clim Change 8:885–889. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41558-018-0259-x",{"doi":1930},"10.1038\u002Fs41558-018-0259-x",{"id":20,"text":1932,"url":20,"identifiers":1933},"Wang X, Liu L, Piao S, Janssens IA, Tang J, Liu W, Chi Y, Wang J, Xu S (2014) Soil respiration under climate warming: differential response of heterotrophic and autotrophic respiration. Glob Change Biol 20:3229–3237. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fgcb.12620",{"doi":1934},"10.1111\u002Fgcb.12620",{"id":20,"text":1936,"url":20,"identifiers":1937},"Xu W, Yuan W, Cui L, Ma M, Zhang F (2019) Responses of soil organic carbon decomposition to warming depend on the natural warming gradient. Geoderma 343:10–18. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2019.02.017",{"doi":1938},"10.1016\u002Fj.geoderma.2019.02.017",{"id":20,"text":1940,"url":20,"identifiers":1941},"Yan C, Yuan Z, Shi X, Lock TR, Kallenbach RL (2020) A global synthesis reveals more response sensitivity of soil carbon flux than pool to warming. J Soils Sed 20:1208–1221. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11368-019-02513-1",{"doi":1942},"10.1007\u002Fs11368-019-02513-1",{"id":20,"text":1944,"url":20,"identifiers":1945},"Yang H, Li X, Wang Z, Jia R, Liu L, Chen Y, Wei Y, Gao Y, Li G (2014) Carbon sequestration capacity of shifting sand dune after establishing new vegetation in the Tengger Desert, northern China. Sci Tot Env 478:1–11. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2014.01.063",{"doi":1946},"10.1016\u002Fj.scitotenv.2014.01.063",{"id":20,"text":1948,"url":20,"identifiers":1949},"Yiqi L, Zhou X (2010) Soil respiration and the environment. Elsevier, USA",{},{"id":20,"text":1951,"url":20,"identifiers":1952},"You G, Zhang Z, Zhang R (2019) Temperature adaptability of soil respiration in short-term incubation experiments. J Soils Sed 19:557–565. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11368-018-2059-3",{"doi":1953},"10.1007\u002Fs11368-018-2059-3",{"id":20,"text":1955,"url":20,"identifiers":1956},"Yu H, Liu X, Ma Q, Yin Z, Wang Y, Xu Z, Zhou G (2021) Climatic warming enhances soil respiration resilience in an arid ecosystem. Sci Tot Env 756:144005. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2020.144005",{"doi":1957},"10.1016\u002Fj.scitotenv.2020.144005",{"id":20,"text":1959,"url":20,"identifiers":1960},"Yu H, Xu Z, Zhou G, Shi Y (2020) Soil carbon release responses to long-term versus short-term climatic warming in an arid ecosystem. Biogeosciences 17:781–792. https:\u002F\u002Fdoi.org\u002F10.5194\u002Fbg-17-781-2020",{"doi":1961},"10.5194\u002Fbg-17-781-2020",{"id":20,"text":1963,"url":20,"identifiers":1964},"Zamani R, Ali AMA, Roozbahani A (2020) Evaluation of adaptation scenarios for climate change impacts on agricultural water allocation using fuzzy MCDM methods. Water Resour Manag 34:1093–1110. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11269-020-02486-8",{"doi":1965},"10.1007\u002Fs11269-020-02486-8",{"id":20,"text":1967,"url":20,"identifiers":1968},"Zhang W, Parker KM, Luo Y, Wan S, Wallace LL, Hu S (2005) Soil microbial responses to experimental warming and clipping in a tallgrass prairie. Glob Change Biol 11:266–277. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2486.2005.00902.x",{"doi":1969},"10.1111\u002Fj.1365-2486.2005.00902.x",{"id":20,"text":1971,"url":20,"identifiers":1972},"Zhou X, Chen C, Wang Y, Xu Z, Hu Z, Cui X, Hao Y (2012) Effects of warming and increased precipitation on soil carbon mineralization in an Inner Mongolian grassland after 6 years of treatments. Biol Fertility Soils 48:859–866. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00374-012-0686-1",{"doi":1973},"10.1007\u002Fs00374-012-0686-1",{"id":1975,"createTime":1976,"updateTime":1977,"relativeEntities":1978,"slug":1979,"properties":1980,"entityType":168,"verifyStatus":169,"verifyTime":1977,"verifyNote":170,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1989,"fullTextUrl":20,"authors":1990,"publicationType":326,"publisherRelationship":2057,"citationCount":20,"citationInfo":20,"publishDate":2091,"publishYear":1531,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":363},"97a90769-579c-47b7-9621-e2498a51800f","2024-02-05T16:14:35.723+00:00","2025-01-05T23:51:34.744+00:00",[],"Seed-Pre-treatment-with-Polyhydroxy-Fullerene-Nanoparticles-Confer-Salt-Tolerance-in-Wheat-Through-Upregulation-of-H2O2-Neutralizing-Enzymes-and-Phosphorus-Uptake",{"references":1981,"abstract":1983,"title":1985,"doi":1987},{"VOID":1982},"Aebi H (1984) Catalase in vitro (In: L. Pac). Academic Press, Orlando\nAlemán F, Nieves-Cordones M, Martínez V, Rubio F (2009) Potassium\u002Fsodium steady-state homeostasis in Thellungiella halophila and Arabidopsis thaliana under long-term salinity conditions. Plant Sci 176:768–774\nAndrievsky G, Klochkov V, Derevyanchenko L (2005) Is the C60 fullerene molecule toxic?! Fuller Nanotub Car N 13(4):363–376\nApel K, Hirt H (2004) Reactive oxygen species: metabolism, oxidative stress, and signal transduction. Annu Rev Plant Biol 55:373–399\nArnon DI (1949) Copper enzymes in isolated chlorlasts: polyphenoloxidase in Beta vulgaris. Plant Physiol 24(1):1–15\nAssemi S, Tadjiki S, Donose BC, Nguyen AV, Miller JD (2010) Aggregation of fullerol C60(OH)24 nanoparticles as revealed using flow field-flow fractionation and atomic force microscopy. Langmuir 26(20):16063–16070\nBarragán V, Leidi EO, Andrés Z, Rubio L, De Luca A, Fernández JA, Cubero B, Pardo JM (2012) Ion exchangers NHX1 and NHX2 mediate active potassium uptake into vacuoles to regulate cell turgor and stomatal function in Arabidopsis. Plant Cell 24:1127–1142\nBarton CJ (1948) Photometric analysis of phosphate rock. Anal Chem 20(11):1068–1073\nBeauchamp C, Fridovich I (1971) Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. Anal Biochem 44(1):276–287\nBorišev M, Borišev I Župunski M, Arsenov D, Pajević S, Ćurčić Ž, Vasin J, Djordjevic A (2016) Drought impact is alleviated in sugar beets (Beta vulgaris L.) by foliar application of fullerenol nanoparticles. PLoS One 11(11):263 1-20\nBradford MM (1976) A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 72(1–2):248–254\nBray HG, Thorpe WV (1954) Analysis of phenolic compounds of interest in metabolism. Methods Biochem Anal 1:27–52\nCavalcanti FR, Lima JPMS, Ferreira-Silva SL, Viegas RA, Silveira JAG (2007) Roots and leaves display contrasting oxidative response during salt stress and recovery in cowpea. J Plant Physiol 164:591–600\nChance B, Maehly AC (1955) Assay of catalases and peroxidases. Methods Enzymol 2:764–775\nColmer TD, Munns R, Flowers TJ (2006) Improving salt tolerance of wheat and barley: future prospects. Aust J Exp Agric 45(11):425–1443\nCuin TA, Bose J, Stefano G, Jha D, Tester M, Mancuso S, Shabala S (2011) Assessing the role of root plasma membrane and tonoplast Na+\u002FH+ exchanger in salinity tolerance in wheat: in planta quantification methods. Plant Cell Environ 34:947–961\nCuin TA, Tian Y, Betts SA, Chalmandrier R, Shabala S (2009) Ionic relations and osmotic adjustment in durum and bread wheat under saline conditions. Funct Plant Biol 36:1110–1119\nDubois M, Gilles KA, Hamilton JK, Rebers PA, Smith F (1956) Colorimetric method for determination of sugars and related substances. Anal Chem 28(3):350–431\nFlowers TJ, Colmer TD (2008) Salinity tolerance in halophytes. New Phytol 179:945–963\nFoley S, Crowley C, Smaihi M, Bonfils C, Erlanger BF, Seta P, Larroque C (2002) Cellular localisation of a water-soluble fullerene derivative. Biochem Biophys Res Commun 294(1):116–119\nGao J, Wang Y, Folta KM, Krishna V, Bai W, Indeglia P, Georgieva A, Nakamura H, Koopman B, Moudgil B (2011) Polyhydroxy fullerenes (fullerols or fullerenols): beneficial effects on growth and lifespan in diverse biological models. PLoS One 6(5):1–8\nGeilfus CM (2018) Chloride: from nutrient to toxicant. Plant Cell Physiol 59(5):877–886\nGonzález-Pérez L, Páez-Watson T, Álvarez-Suarez JM, Obando-Rojas MC, Bonifaz-Arcos E, Viteri G, Rivas-Romero F, Tejera E, Rogers HJ, Cabrera JC (2018) Application of exogenous xyloglucan oligosaccharides affects molecular responses to salt stress in Arabidopsis thaliana seedlings. J Soil Sci Plant Nutr 18(4):1187–1205\nHamilton PB, Van Slyke DD (1943) The gasometric determination of free amino acids in blood filtrates by the ninhydrin-carbon dioxide method. J Biol Chem 150(1):231–250\nHasegawa PM (2013) Sodium (Na+) homeostasis and salt tolerance of plants. Environ Exp Bot 92:19–31\nHasegawa PM, Bressan RA, Zhu JK, Bohnert HJ (2000) Plant cellular and molecular responses to high salinity. Annu Rev Plant Biol 51:463–499\nHauser F, Horie T (2010) A conserved primary salt tolerance mechanism mediated by HKT transporters: a mechanism for sodium exclusion and maintenance of high K+\u002FNa+ ratio in leaves during salinity stress. Plant Cell Environ 33:552–565\nIqbal M, Ashraf M (2013) Gibberellic acid mediated induction of salt tolerance in wheat plants: growth, ionic partitioning, photosynthesis, yield and hormonal homeostasis. Environ Exp Bot 86:76–85\nKirk JT, Allen RL (1965) Dependence of chloroplast pigment synthesis on protein synthesis: effect of actidione. Biochem Biophys Res Commun 21(6):523–530\nKole C, Kole P, Randunu KM, Choudhary P, Podila R, Ke PC, Rao AM, Marcus RK (2013) Nanobiotechnology can boost crop production and quality: first evidence from increased plant biomass, fruit yield and phytomedicine content in bitter melon (Momordica charantia). BMC Biotechnol 13(1):37\nLäuchli A, James RA, Huang CX, McCully M, Munns R (2008) Cell-specific localization of Na+ in roots of durum wheat and possible control points for salt exclusion. Plant Cell Environ 31:1565–1574\nLiu F, Xiong F, Fan Y, Li J, Wang H, Xing G, Yan F, Tai F, He R (2016) Facile and scalable fabrication engineering of fullerenol nanoparticles by improved alkaline-oxidation approach and its antioxidant potential in maize. J Nanopart Res 483(18):338\nMarshner H (1995) Mineral nutrition of higher plants, 2nd edn. Academic Press, New York\nMittler R (2002) Oxidative stress, antioxidants and stress tolerance. Trends Plant Sci 7(9):405–410\nMittler R (2006) Abiotic stress, the field environment and stress combination. Trends Plant Sci 11:15–19\nMukherjee SP, Choudhuri MA (1983) Implications of water stress-induced changes in the levels of endogenous ascorbic acid and hydrogen peroxide in Vigna seedlings. Physiol Plant 58(2):166–170\nMunns R, James RA, Gilliham M, Flowers TJ, Colmer TD (2016) Tissue tolerance: an essential but elusive trait for salt-tolerant crops. Funct Plant Biol 43(498):1103–1113\nMunns R, Tester M (2008) Mechanisms of salinity tolerance. Annu Rev Plant Biol 59:651–681\nNakano Y, Asada K (1981) Hydrogen peroxide is scavenged by ascorbate-specific peroxidase in spinach chloroplasts. Plant Cell Physiol 22(5):867–880\nNedjimi B (2017) Calcium application enhances plant salt tolerance: a review. In: Naeem M, Ansari A, Gill S (eds) Essential plant nutrients. Springer, Cham\nPanova GG, Ktitorova IN, Skobeleva OV, Sinjavina NG, Charykov NA, Semenov KN (2016) Impact of polyhydroxy fullerene (fullerol or fullerenol) on growth and biophysical characteristics of barley seedlings in favourable and stressful conditions. Plant Growth Regul 79(3):309–317\nPardo JM, Rubio F (2011) Na+ and K+ transporters in plant signaling. In: Transporters and pumps in plant signaling. Springer, Berlin Heidelberg, pp 65–98\nPękal A, Pyrzynska K (2014) Evaluation of aluminium complexation reaction for flavonoid content assay. Food Anal Methods 7(9):1776–1782\nPercey WJ, Shabala L, Wu Q, Su N, Breadmore MC, Guijt RM, Bose J, Shabala S (2016) Potassium retention in leaf mesophyll as an element of salinity tissue tolerance in halophytes. Plant Physiol Biochem 109:346–354\nRaza SH, Athar HR, Ashraf M, Hameed A (2007) Glycinebetaine-induced modulation of antioxidant enzymes activities and ion accumulation in two wheat cultivars differing in salt tolerance. Environ Exp Bot 60(3):368–376\nRaza SH, Ahmad MB, Ashraf MA, Shafiq F (2014) Time-course changes in growth and biochemical indices of mung bean [Vigna radiata (L.) Wilczek] genotypes under salinity. Braz J Bot 37(4):429–439\nSachkova AS, Kovel ES, Vorobeva AA, Kudryasheva NS (2017) Antioxidant activity of fullerenols. Bioluminescent monitoring in vitro. Procedia Tech 27:230–231\nShabala S, Shabala S, Cuin TA, Pang J, Percey W, Chen Z, Conn S, Eing C, Wegner LH (2010) Xylem ionic relations and salinity tolerance in barley. Plant J 61:839–853\nShabala L, Zhang J, Pottosin I, Bose J, Zhu M, Fuglsang AT, Velarde-Buendia A, Massart A, Hill CB, Roessner U, Shabala S (2016) Cell-type-specific H+-ATPase activity in root tissues enables K+ retention and mediates acclimation of barley (Hordeum vulgare) to salinity stress. Plant Physiol 172(4):2445–2458\nShabala S (2017) Signalling by potassium: another second messenger to add to the list? J Exp Bot 68(15):4003–4007\nShabala S, Cuin T (2007) Potassium transport and plant salt tolerance. Physiol Plant 133:651–669\nShafiq F, Raza SH, Bibi A, Khan I, Iqbal M (2018) Inluence of proline priming on antioxidative potential and ionic distribution and its relationship with salt tolerance of wheat. Cereal Res Commun 46(2):286–299\nSheldon AR, Dalal RC, Kirchhof G, Kopittke PM, Menzies NW (2017) The effect of salinity on plant-available water. Plant Soil 418(1-2):477–491\nShu S, Guo R, Sun J, Yuan Y (2012) Effects of salt stress on the structure and function of the photosynthetic apparatus in Cucumis sativus and its protection by exogenous putrescine. Physiol Plant 146:285–296\nTaiz L, Zeiger E (2010) Plant physiology, fifth edn. Sinauer Associates, Sunderland\nTavakkoli E, Fatehi F, Coventry S, Rengasamy P, McDonald GK (2010) Additive effects of Na+ and Cl− ions on barley growth under salinity stress. J Exp Bot 62:2189–2203\nTeakle NL, Tyerman SD (2010) Mechanisms of Cl− transport contributing to salt tolerance. Plant Cell Environ 33:566–589\nTedeschi A, Zong L, Huang CH, Vitale L, Volpe MG, Xue X (2017) Effect of salinity on growth parameters, soil water potential and ion composition in Cucumis melo cv. Huanghemi in north‐western China. J Agron Crop Sci 203(1): 41–55\nTorbaghan ME, Lakzian A, Astaraei AR, Fotovat A, Besharati H (2017) Salt and alkali stresses reduction in wheat by plant growth promoting haloalkaliphilic bacteria. J Soil Sci Plant Nutr 17(4):1058–1087\nVelikova V, Yordanov I, Edreva A (2000) Oxidative stress and some antioxidant systems in acid rain-treated bean plants: Protective role of exogenous polyamines. Plant Sci 151(1):59–66\nWang C, Zhang H, Ruan L, Chen L, Li H, Chang XL, Zhang X, Yang ST (2016) Bioaccumulation of 13C-fullerenol nanomaterials in wheat. Environ Sci Nano 3(4):799–805\nWolf B (1982) A comprehensive system of leaf analyses and its use for diagnosing crop nutrient status. Commun Soil Sci Plant Anal 13(12):1035–1059\nXiong JL, Li J, Wang HC, Zhang CL, Naeem MS (2018) Fullerol improves seed germination, biomass accumulation, photosynthesis and antioxidant system in Brassica napus L. under water stress. Plant Physiol Biochem 129:130–140\nZhang WD, Wang P, Bao Z, Ma Q, Duan LJ, Bao AK, Zhang JL, Wang SM (2017) SOS1, HKT1; 5, and NHX1 synergistically modulate Na+ homeostasis in the halophytic grass Puccinellia tenuiflora. Front Plant Sci 8:576\nZhu J (2002) Salt and drought stress signal transduction in plants. Annu Rev Plant Biol 53:247–273",{"EN":1984},"Polyhydroxy fullerenes nanoparticles (PHF) are regarded as free radical sponges. Can they mitigate oxidative stress and induce tolerance in plants exposed to salinity? The influence of PHF seed pre-treatment on growth and biochemical attributes of NaCl-stressed wheat is studied. Wheat seeds (cv. Ujala) were pre-treated with control, hydro-priming, 10, 40, 80, and 120 nM PHF doses for 10 h and grown in sand-filled pots under control (0 mM NaCl) and salinity (150 mM NaCl) provided through nutrient solution. Salinity markedly decreased root and shoot growth attributes consistent with the reduction in the chlorophyll contents, whereas it increased the antioxidant activities of superoxide dismutase (SOD), catalase (CAT), peroxidase (POD), and ascorbate peroxidase (APX) enzymes. Plants exposed to salinity exhibited increase in malondialdehyde (MDA) and hydrogen peroxide (H2O2) contents which indicated oxidative stress. Further, salinity triggered rise in Na+ uptake while decreased in K+ and Ca2+ contents both in the root and shoot. By contrast, wheat seedlings grown from PHF-treated seeds exhibited recovery in root and shoot growth under salinity. This recovery was linked with lower levels of MDA and H2O2 contents and higher antioxidant activities of CAT, POD, and APX enzymes under salinity stress. The PHF-treated plants had higher chlorophyll, free amino acids, ascorbic acid, and soluble sugars. Moreover, PHF seed pre-treatment resulted in higher K+ and P contents in the root while higher P contents in the shoot. Above all, PHF application mitigated adverse effects of salinity and promoted early seedling growth and establishment in wheat.",{"EN":1986},"Seed Pre-treatment with Polyhydroxy Fullerene Nanoparticles Confer Salt Tolerance in Wheat Through Upregulation of H2O2 Neutralizing Enzymes and Phosphorus Uptake",{"VOID":1988},"10.1007\u002Fs42729-019-00073-4","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs42729-019-00073-4",[1991,2006,2018,2045],{"id":1992,"sortIndex":21,"researcher":20,"roles":1993,"affiliations":1994,"properties":2003},"51f54600-21d4-476a-8d5e-54ffae4f323a",[176],[1995],{"id":20,"sortIndex":21,"affiliation":1996,"properties":20},{"id":1997,"createTime":1998,"updateTime":1998,"relativeEntities":1999,"slug":20,"properties":2000,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"cabc7a68-7cbb-4841-9961-e23b3cf87004","2023-12-11T18:17:34.662+00:00",[],{"title":2001},{"VI":2002},"Department of Botany, Government College University Faisalabad, Faisalabad, Pakistan",{"title":2004},{"VI":2005},"Fahad Shafiq",{"id":2007,"sortIndex":302,"researcher":20,"roles":2008,"affiliations":2009,"properties":2015},"9130b61f-3b37-4473-85e4-f39f0106c0a4",[176],[2010],{"id":20,"sortIndex":21,"affiliation":2011,"properties":20},{"id":1997,"createTime":1998,"updateTime":1998,"relativeEntities":2012,"slug":20,"properties":2013,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":2014},{"VI":2002},{"title":2016},{"VI":2017},"Muhammad Arslan Ashraf",{"id":2019,"sortIndex":204,"researcher":20,"roles":2020,"affiliations":2021,"properties":2042},"44890898-0c0a-4803-a629-d389c6d03faa",[176],[2022,2032],{"id":2023,"sortIndex":258,"affiliation":2024,"properties":2031},"fe3c3b7e-b877-4a82-b8b7-826d97f37770",{"id":2025,"createTime":2026,"updateTime":2026,"relativeEntities":2027,"slug":20,"properties":2028,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"d7030d2a-d08d-4191-8fb6-ec22ae67a86d","2024-01-18T13:00:43.413+00:00",[],{"title":2029},{"VI":2030},"Faculty of Animal Sciences, Quaid-i-Azam University, Islamabad, Pakistan",{},{"id":20,"sortIndex":21,"affiliation":2033,"properties":20},{"id":2034,"createTime":2035,"updateTime":2036,"relativeEntities":2037,"slug":2038,"properties":2039,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"2ec54ba3-021f-4be7-acfd-4bdfb11e7f07","2024-04-21T16:26:01.806+00:00","2024-06-19T22:40:34.318+00:00",[],"Department-of-Bioinformatics-and-Biotechnology-Government-College-University-Faisalabad-Faisalabad-Pakistan",{"title":2040},{"EN":2041},"Department of Bioinformatics and Biotechnology, Government College University Faisalabad, Faisalabad, Pakistan",{"title":2043},{"VI":2044},"Muhammad 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G, Gerkabo H (2021) Effects of green manure legumes and their termination time on yield of maize and soil chemical properties. Arch Agron Soil Sci 67:397–409. https:\u002F\u002Fdoi.org\u002F10.1080\u002F03650340.2020.1733536\nAdeleke R, Nwangburuka C, Oboirien B (2017) Origins, roles and fate of organic acids in soils: a review. S Afr J Bot 108:393–406. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.sajb.2016.09.002\nAlvarez VVH, Novais RF, Dias LE, Oliveira JA (2000) Determinação e uso do fósforo remanescente. B Inf Soc Bras Ci Solo 25:27–32\nAlvarez VVH, Ribeiro CA (1999) Calagem. In: Ribeiro CA, Guimaraes PTG, Alvarez VH (eds) Recomendações para o uso de corretivos e fertilizantes em Minas Gerais: 5ª aproximação. Comissão de Fertilidade do Solo do Estado de Minas Gerais, Viçosa, MG, pp 43–60\nAraújo JBS, da Silva MW, de Lima WL, Pereira ACH, Endringer DC, de Souza JL (2021) Decomposition and nutrients released from forest and perennial crops associated with organic coffee. Coffee Sci 16:e161845. https:\u002F\u002Fdoi.org\u002F10.25186\u002F.v16i.1845\nÁvila-Escobedo MJ, Peralta-Antonio N, Montiel-Vicencio G, Trejo-Téllez LI, Rebolledo-Martinez A, Sanchez-Garcia P (2022) Screening of potential legume to be used as green manure in tropical areas of Mexico. J Soil Sci Plant Nutr 22:3172–3188. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs42729-022-00876-y\nBhupenchandra I, Basumatary A, Dutta S, Nabachandra Singh L, Das A, Singh LK, Devi SH, Syniorita S, Premabati Devi C (2022) Direct and residual impact of boron fertilization improves the crop yield, nutrient contents, nutrient uptake, and nutrient use efficiencies in cauliflower–cowpea–okra sequence in an acidic Inceptisol of North East India. J Plant Nutr 45:963–983. https:\u002F\u002Fdoi.org\u002F10.1080\u002F01904167.2021.1994591\nButterly CR, Bhatta Kaudal B, Baldock JA, Tang C (2011) Contribution of soluble and insoluble fractions of agricultural residues to short-term pH changes. Eur J Soil Sci 62:718–727. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2389.2011.01387.x\nCarmo DL, Silva CA (2012) Quantification methods of carbon and organic matter in organic residues (Métodos de quantificação de carbono e matéria orgânica em resíduos orgânicos). R Bras Ci Solo 36:1211–1220. https:\u002F\u002Fdoi.org\u002F10.1590\u002FS0100-06832012000400015\nCavalli E, Lange A, Cavalli C, Behling M (2018) Decomposition and release of nutrients from crop residues on soybean-maize cropping systems. Rev Bras Cienc Agrar 13:1–8. https:\u002F\u002Fdoi.org\u002F10.5039\u002Fagraria.v13i2a5527\nCecílio Filho AB, Carmona VMV, Junior AAS (2017) Broccoli growth and nutrient accumulation. Científica 45:95–104. https:\u002F\u002Fdoi.org\u002F10.15361\u002F1984-5529.2017v45n1p95-104\nda Silva JP, Teixeira RdS, da Silva IR, Soares EMB, Lima AMN (2022) Decomposition and nutrient release from legume and non-legume residues in a tropical soil. Eur J Soil Sci 73:e13151. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fejss.13151\nDiniz ER, Santos RHS, Urquiaga SS, Peternelli LA, Barrella TP, Freitas GBD (2007) Green manure incorporation timing for organically grown broccoli. Pesq Agropec Bras 42:199–206. https:\u002F\u002Fdoi.org\u002F10.1590\u002FS0100-204X2007000200008\nDiniz ER, de Oliveira VT, Santos RHS, de Almeida AR, de Mattos UJBM (2015) Growth and yield of broccoli fertilized with doses of velvet bean in greenhouse (Crescimento e produção de brócolis adubado com doses de mucuna-cinza em casa de vegetação). Semin Cienc Agrar 36:1277–1286. https:\u002F\u002Fdoi.org\u002F10.5433\u002F1679-0359.2015v36n3p1277\nDiniz ER, Vargas TO, Pereira WD, Santos RHS, Urquiaga S, Modolo AJ (2017) Levels of Crotalaria juncea on growth, production, recovery and efficiency of the use of N in broccoli. Hortic Bras 35:395–401. https:\u002F\u002Fdoi.org\u002F10.1590\u002Fs0102-053620170313\nFageria NK, Baligar VC (2005) Enhancing nitrogen use efficiency in crop plants. Adv Agron 88:97–185. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0065-2113(05)88004-6\nFontes PCR (1999) Brócolos. In: Ribeiro AC, Guimarães PTG, Alvarez VVH (eds) Recomendações para o uso de corretivos e fertilizantes em Minas Gerais: 5ª aproximação. Comissão de Fertilidade do Solo do Estado de Minas Gerais, Viçosa, MG, pp 183–184\nFreitas GBD, Rocha MS, Santos RHS, Freitas LMDS, Resende LDA (2011) Broccoli yield in response to top-dressing fertilization with green manure and biofertilizer. Rev Ceres 58:645–650. https:\u002F\u002Fdoi.org\u002F10.1590\u002FS0034-737X2011000500016\nHolness RL, Reddy MR, Crozier CR, Niedziela CE Jr (2008) Evaluating inorganic nitrogen and rye-crimson clover mixture fertilization of spring broccoli and lettuce by 15nitrogen tracing and mass balance. J Plant Nutr 31:1033–1045. https:\u002F\u002Fdoi.org\u002F10.1080\u002F01904160802097359\nKist BB, Carvalho C, Beling RR (2021) Brazilian Horti & Fruti Yearbook 2021 (Anuário Brasileiro de Horti & Fruti 2021). Editora Gazeta Santa Cruz LTDA, Santa Cruz do Sul - RS\nKumar PA, Chozhan K, Dhevagi P, Mahimairaja S, Prabhu R, Poornima R (2022) A comparative study of effective microorganisms (EM) and biocompost in the decomposition of coconut waste material. J Appl Nat sci 14:129–137. https:\u002F\u002Fdoi.org\u002F10.31018\u002Fjans.v14iSI.3598\nLiang K, Wang X, Du Y, Li G, Wei Y, Liu Y, Li Z, Wei X (2022) Effect of legume green manure on yield increases of three major crops in China: a meta-analysis. Agronomy 12:1753. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fagronomy12081753\nMalavolta E, Vitti GC, Oliveira SA (1989) Avaliação do estado nutricional das plantas: princípios e aplicações. Associação Brasileira para Pesquisa da Potassa e do Fosfato - POTAFOS, Piracicaba, São Paulo\nMartínez E, Fuentes JP, Acevedo E (2008) Soil organic carbon and soil properties (Carbono orgánico y propiedades del suelo). R C Suelo Nutr Veg 8:68–96. https:\u002F\u002Fdoi.org\u002F10.4067\u002FS0718-27912008000100006\nMuramoto J, Smith RF, Shennan C, Klonsky KM, Leap J, Ruiz MS, Gliessman SR (2011) Nitrogen contribution of legume\u002Fcereal mixed cover crops and organic fertilizers to an organic broccoli crop. HortScience 46:1154–1162. https:\u002F\u002Fdoi.org\u002F10.21273\u002FHORTSCI.46.8.1154\nNeina D (2019) The role of soil pH in plant nutrition and soil remediation. Appl Environ Soil Sci 19:1–9. https:\u002F\u002Fdoi.org\u002F10.1155\u002F2019\u002F5794869\nNorton J, Ouyang Y (2019) Controls and adaptive management of nitrification in agricultural soils. Front Microbiol 10:1931. https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffmicb.2019.01931\nPei G, Liu J, Peng B, Gao D, Wang C, Dai W, Jiang P, Bai E (2019) Nitrogen, lignin, C\u002FN as important regulators of gross nitrogen release and immobilization during litter decomposition in a temperate forest ecosystem. For Ecol Manag 440:61–69. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.foreco.2019.03.001\nPeralta-Antonio N, Watthier M, Santos RHS, Martinez HEP, Vergütz L (2019) Broccoli nutrition and changes of soil solution with green manure and mineral fertilization. J Soil Sci Plant Nutr 19:816–829. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs42729-019-00081-4\nPeralta-Antonio N, Watthier M, Santos RHS (2021a) Green manure and mineral fertilizer in sequential cropping: effect on dry matter, yield, accumulation and recovery efficiency of nutrients. Commun Soil Sci Plant Anal 52:322–337. https:\u002F\u002Fdoi.org\u002F10.1080\u002F00103624.2020.1845354\nPeralta-Antonio N, Watthier M, Santos RHS (2021) Green manure and mineral fertilization: residual effect on dry matter production, nutrient extraction and nutrients recovery efficiency in two succesive crops. Trop Subtrop Agroecosystems 24:90. https:\u002F\u002Fdoi.org\u002F10.56369\u002Ftsaes.3673\nPinheiro GL, Silva CA, Lima JM (2014) Soluble carbon in Oxisol under the effect of organic residue rates. Rev Bras Ciênc Solo 38:810–820. https:\u002F\u002Fdoi.org\u002F10.1590\u002FS0100-06832014000300012\nRakesh S, Sarkar D, Sinha AK, Mukhopadhyay P, Danish S, Fahad S, Datta R (2021) Carbon mineralization rates and kinetics of surface-applied and incorporated rice and maize residues in Entisol and Inceptisol soil types. Sustainability 13:7212. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fsu13137212\nSainju UM, Whitehead WF, Singh BP (2005) Biculture legume–cereal cover crops for enhanced biomass yield and carbon and nitrogen. Agron J 97:1403–1412. https:\u002F\u002Fdoi.org\u002F10.2134\u002Fagronj2004.0274\nSBCS (Sociedade Brasileira de Ciência do Solo) (2004) Manual de adubação e calagem para os Estados do RS e SC. Sociedade Brasileira deCiência do Solo - Núcleo Regional Sul, Comissão de Química e Fertilidade do Solo, Porto Alegre\nSchiavon A, Blind AD, Eckstein B, Pinheiro JB, Vendrame LPC, Mikio Hanashiro M, Jorge MHA, Vidal MC, Filho MM, Botrel N, Madeira RN, Melo RAC (2015) A cultura dos brócolis, Coleção Plantar 74. Empresa Brasileira de Pesquisa Agropecuária, Embrapa Hortaliças, Ministério da Agricultura, Pecuária e Abastecimento, Brasília, DF\nSilva AL, Cecílio Filho AB, Mendoza-Cortez JW, Lima Junior JA (2016) Potassium fertilization of cauliflower and broccoli in a potassium-rich soil. Cienc Inv Agr 43:151–157. https:\u002F\u002Fdoi.org\u002F10.4067\u002FS0718-16202016000100014\nSiqueira RG, Santos RHS, Perigolo D, Urquiaga S, Ribas RGT, Peternelli LA (2009) Nitrogen nutrition and yield of broccoli cropped with different doses of velvet bean at two seasons (Nutrição nitrogenada e produção de brócolis cultivado com diferentes doses de mucuna em duas épocas). Rev Ceres 56:826–833\nTedesco M, Gianello C, Bissani C, Bohnen H, Volkeiss S (1995) Análise de solo, plantas e outros materiais, 2a ed. Departamento de solo, Faculdade de Agronomia, Universidade Federal do Rio Grande do Sul, Porto Alegre\nTeixeira PC, Donagemma GG, Fontana A, Teixeira WG (2017) Manual de métodos de análise de solos, 3a ed. Empresa Brasileira de PesquisaAgropecuária, Embrapa Solosl, Ministério da Agricultura, Pecuária e Abastecimento, Brasília, DF\nTorres JLR, Pereira MG (2008) Potassium dynamics in crop residues of cover plants in Cerrado (Dinâmica do potássio nos resíduos vegetais de plantas de cobertura no Cerrado). Rev Bras Ciênc Solo 32:1609–1618. https:\u002F\u002Fdoi.org\u002F10.1590\u002FS0100-06832008000400025\nTorres JLR, Gomes FRDC, Barreto AC, Orioli Junior V, França GD, Lemes EM (2021) Nutrient cycling of different plant residues and fertilizer doses in broccoli cultivation. Hortic Bras 39:11–19. https:\u002F\u002Fdoi.org\u002F10.1590\u002Fs0102-0536-20210102\nTrevisan JN, Martins GAK, Dal’Col Lúcio A, Castaman C, Marion RR, Trevisan BG (2003) Yield response of spring-sown broccoli cultivars in Southern Brazil (Rendimento de cultivares de brócolis semeadas em outubro na região centro do Rio Grande do Sul). Cienc Rural 33:233–239. https:\u002F\u002Fdoi.org\u002F10.1590\u002Fs0103-84782003000200009\nVargas TO, Diniz ER, Pacheco ALV, Santos RHS, Urquiaga S (2017) Green manure-15N absorbed by broccoli and zucchini in sequential cropping. Sci Hortic 214:209–213. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scienta.2016.11.028\nWatthier M, Peralta Antonio N, Gomes JA, Rocha SBF, Santos RHS (2020) Decomposition of green manure with different grass: legume ratios. Arch Agron Soil Sci 66:913–924. https:\u002F\u002Fdoi.org\u002F10.1080\u002F03650340.2019.1644622\nWatthier M, Peralta-Antonio N, Oliveira FS, Santos RHS (2022) Residual effect of green manure with different grass\u002Flegume ratios on the sequential cultivation of broccoli and brachiaria. J Soil Sci Plant Nutr 22:619–630. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs42729-021-00683-x\nXavier FADS, Oliveira JIA, Silva MRD (2017) Decomposition and nutrient release dynamics of shoot phytomass of cover crops in the Recôncavo Baiano. Rev Bras Cienc Solo 41:e0160103. https:\u002F\u002Fdoi.org\u002F10.1590\u002F18069657rbcs20160103\nYeomans JC, Bremner JM (1988) A rapid and precise method for routine determination of organic carbon in soil. Commun Soil Sci Plant Anal 19:1467–1476. https:\u002F\u002Fdoi.org\u002F10.1080\u002F00103628809368027",{"EN":2102},"We determined the accumulation, agronomic efficiency (AE), and recovery efficiency (RE) of N, K, Ca, Mg, and S in the first broccoli crop, as well as the RE of N (NRE) and the soil solution (SS) characteristics in two subsequent crops, using different ratios (0, 25, 50, 75, and 100%) of Jack beans (JB) and pearl millet (PM). The treatments control, 100JB, 75JB25PM, 50JB50PM, 25JB75PM, and 100PM were applied only at the first broccoli crop. After the harvest, the treatment residual effect was measured in a second broccoli crop and the brachiaria grass (in four cuts). Greater nutrient accumulation, AE, and RE were detected with 100JB and 75JB25PM. Static differences in SS pH were detected in five of the 10 sampling dates, although the effect of treatments changed over time. In the SS, a higher concentration of N and K and a lower concentration of Ca, Mg, and S were detected with 100JB compared to the control. Increasing the proportion of JB in the mixture results in higher accumulation, AE, and RE of K, Ca, Mg, and S in the first broccoli crop and higher NRE in successive crops. As the proportion of PM in the mixture increases, the need for inputs that promote the mineralization process increases. Changes in SS are mainly crop-driven, except in the case of pH, EC, and nutrient concentrations which decrease as plant age and the number of established crops increase.",{"EN":2104},"The Mixture of Legumes and Gramineous as Green Manure and Its Effect on Nutrient Efficiency and Soil Solution Characteristics in Three Successive Crops",{"VOID":2106},"10.1007\u002Fs42729-023-01440-y","2025-01-30T23:50:23.252+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs42729-023-01440-y",[2110,2125,2140,2152],{"id":2111,"sortIndex":258,"researcher":20,"roles":2112,"affiliations":2113,"properties":2122},"0a670c0e-e21e-4310-8e5c-2777dd80ad28",[176],[2114],{"id":20,"sortIndex":21,"affiliation":2115,"properties":20},{"id":2116,"createTime":2117,"updateTime":2117,"relativeEntities":2118,"slug":20,"properties":2119,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"b786ac09-3508-4c8b-8faf-3664673f64c5","2024-01-18T19:11:42.308+00:00",[],{"title":2120},{"VI":2121},"Instituto Nacional de Investigaciones Forestales, Agrícolas y Pecuarias, Campo Experimental Cotaxtla, Veracruz, México",{"title":2123},{"VI":2124},"Nain Peralta-Antonio",{"id":2126,"sortIndex":204,"researcher":20,"roles":2127,"affiliations":2128,"properties":2137},"438e94bb-bc9a-4243-bda4-9e59f8a6e3db",[176],[2129],{"id":20,"sortIndex":21,"affiliation":2130,"properties":20},{"id":2131,"createTime":2132,"updateTime":2132,"relativeEntities":2133,"slug":20,"properties":2134,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"b34e98ae-5b94-481a-bcb3-715bb95dd204","2023-12-10T01:52:26.441+00:00",[],{"title":2135},{"VI":2136},"Departamento de Agronomia, Universidade Federal de Viçosa, Viçosa, Brazil",{"title":2138},{"VI":2139},"Maciel Carlos Soares",{"id":2141,"sortIndex":302,"researcher":20,"roles":2142,"affiliations":2143,"properties":2149},"62f4befc-3c19-43f2-bfd3-d3d501440d5e",[176],[2144],{"id":20,"sortIndex":21,"affiliation":2145,"properties":20},{"id":2131,"createTime":2132,"updateTime":2132,"relativeEntities":2146,"slug":20,"properties":2147,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":2148},{"VI":2136},{"title":2150},{"VI":2151},"Ricardo Henrique Silva Santos",{"id":2153,"sortIndex":21,"researcher":20,"roles":2154,"affiliations":2155,"properties":2161},"8cfa40ab-7d75-4aa3-a584-f28fae51f657",[176],[2156],{"id":20,"sortIndex":21,"affiliation":2157,"properties":20},{"id":2131,"createTime":2132,"updateTime":2132,"relativeEntities":2158,"slug":20,"properties":2159,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":2160},{"VI":2136},{"title":2162},{"VI":2163},"Maristela Watthier",{"url":2108,"publisher":2165,"properties":2193},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":2166,"slug":10,"properties":2167,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":2171,"manageAffiliations":2172,"indexDatabases":2173,"url":115,"thumbnailPath":20,"statistic":2188,"gsStatistic":20,"type":148,"analyzePriority":20},[],{"issn":2168,"eissn":2169,"title":2170},{"VOID":13},{"VOID":15},{"EN":17},[],[],[2174,2181],{"id":74,"indexDatabase":2175,"url":87,"indexYears":88,"academicFieldIds":2180,"indexDatabaseRanking":93},{"id":76,"createTime":77,"updateTime":78,"relativeEntities":2176,"label":2177,"description":2178,"key":84,"publicationTags":2179,"standard":20},[],{"EN":81,"VI":81},{"EN":81,"VI":83},[86],[90,91,92],{"id":95,"indexDatabase":2182,"url":110,"indexYears":20,"academicFieldIds":2187,"indexDatabaseRanking":20},{"id":97,"createTime":98,"updateTime":99,"relativeEntities":2183,"label":2184,"description":2185,"key":106,"publicationTags":2186,"standard":20},[],{"EN":102,"VI":102},{"VI":104,"EN":105},[108,109],[112,113,114],{"impactFactor":21,"impactFactorByYear":2189,"i10Index":122,"i10IndexLast5Year":123,"totalPublication":124,"totalPublicationByYear":2190,"totalCitation":132,"totalCitationByYear":2191,"totalCitationPerPublication":139,"totalCitationPerPublicationByYear":2192,"hindexLast5Year":147,"hindex":147},{"2020":118,"2021":119,"2022":120,"2023":121},{"2019":126,"2020":127,"2021":128,"2022":129,"2023":130,"2024":131},{"2019":134,"2020":135,"2021":136,"2022":137,"2023":138,"2024":69},{"2019":141,"2020":142,"2021":143,"2022":144,"2023":145,"2024":146},{"volume":2194,"pages":2195},{"VOID":358},{"VOID":2196},"5798-5809","2023-08-28"]