[1]

Jin Z, Qi YC, Dong YS. 2007. Diurnal and seasonal dynamics of soil respiration in desert shrubland of Artemisia Ordosica on Ordos Plateau of Inner Mongolia, China. Journal of Forestry Research 18:231−235

doi: 10.1007/s11676-007-0047-3
[2]

Schimel DS. 1995. Terrestrial ecosystems and the carbon cycle. Global Change Biology 1:77−91

doi: 10.1111/j.1365-2486.1995.tb00008.x
[3]

Li Q, Song X, Chang SX, Peng C, Xiao W, et al. 2019. Nitrogen depositions increase soil respiration and decrease temperature sensitivity in a Moso bamboo forest. Agricultural and Forest Meteorology 268:48−54

doi: 10.1016/j.agrformet.2019.01.012
[4]

Liu X, Zhang S. 2019. Nitrogen addition shapes soil enzyme activity patterns by changing pH rather than the composition of the plant and microbial communities in an alpine meadow soil. Plant and Soil 440:11−24

doi: 10.1007/s11104-019-04054-5
[5]

Liu Y, He N, Zhu J, Xu L, Yu G, et al. 2017. Regional variation in the temperature sensitivity of soil organic matter decomposition in China's forests and grasslands. Global Change Biology 23:3393−3402

doi: 10.1111/gcb.13613
[6]

Basiliko N, Khan A, Prescott CE, Roy R, Grayston SJ. 2009. Soil greenhouse gas and nutrient dynamics in fertilized western Canadian plantation forests. Canadian Journal of Forest Research 39:1220−1235

doi: 10.1139/X09-043
[7]

Jian S, Li J, Chen J, Wang G, Mayes MA, et al. 2016. Soil extracellular enzyme activities, soil carbon and nitrogen storage under nitrogen fertilization: a meta-analysis. Soil Biology and Biochemistry 101:32−43

doi: 10.1016/j.soilbio.2016.07.003
[8]

Luis Moreno J, Bastida F, Díaz-López M, Li Y, Zhou Y, et al. 2022. Response of soil chemical properties, enzyme activities and microbial communities to biochar application and climate change in a Mediterranean agroecosystem. Geoderma 407:115536

doi: 10.1016/j.geoderma.2021.115536
[9]

Li Y, Zhang L, Fang S, Tian Y, Guo J. 2018. Variation of soil enzyme activity and microbial biomass in poplar plantations of different genotypes and stem spacings. Journal of Forestry Research 29:963−972

doi: 10.1007/s11676-017-0524-2
[10]

Singh JS, Raghubanshi AS, Singh RS, Srivastava SC. 1989. Microbial biomass acts as a source of plant nutrients in dry tropical forest and savanna. Nature 338:499−500

doi: 10.1038/338499a0
[11]

Yang K, Zhu J, Zhang M, Yan Q, Sun OJ. 2010. Soil microbial biomass carbon and nitrogen in forest ecosystems of Northeast China: a comparison between natural secondary forest and larch plantation. Journal of Plant Ecology 3:175−182

doi: 10.1093/jpe/rtq022
[12]

Ross DJ, Speir TW, Kettles HA, MacKay AD. 1995. Soil microbial biomass, C and N mineralization and enzyme activities in a hill pasture: influence of season and slow-release P and S fertilizer. Soil Biology and Biochemistry 27:1431−1443

doi: 10.1016/0038-0717(95)00069-Q
[13]

Shao X, Yang W, Wu M. 2015. Seasonal dynamics of soil labile organic carbon and enzyme activities in relation to vegetation types in Hangzhou Bay tidal flat wetland. PLoS One 10:e0142677

doi: 10.1371/journal.pone.0142677
[14]

Anthony MA, Crowther TW, Maynard DS, van den Hoogen J, Averill C. 2020. Distinct assembly processes and microbial communities constrain soil organic carbon formation. One Earth 2:349−360

doi: 10.1016/j.oneear.2020.03.006
[15]

Hartley IP, Hill TC, Chadburn SE, Hugelius G. 2021. Temperature effects on carbon storage are controlled by soil stabilisation capacities. Nature Communications 12:6713

doi: 10.1038/s41467-021-27101-1
[16]

Bond Lamberty B, Christianson DS, Malhotra A, Pennington SC, Sihi D, et al. 2020. COSORE: a community database for continuous soil respiration and other soil-atmosphere greenhouse gas flux data. Global Change Biology 26:7268−7283

doi: 10.1111/gcb.15353
[17]

Qin S, Chen L, Fang K, Zhang Q, Wang J, et al. 2019. Temperature sensitivity of SOM decomposition governed by aggregate protection and microbial communities. Science Advances 5:eaau1218

doi: 10.1126/sciadv.aau1218
[18]

Zhang H, Liu Y, Zhou Z, Zhang Y. 2019. Inorganic nitrogen addition affects soil respiration and belowground organic carbon fraction for a pinus tabuliformis forest. Forests 10:369

doi: 10.3390/f10050369
[19]

Li T, Zhang H, Wang X, Cheng S, Fang H, et al. 2019. Soil erosion affects variations of soil organic carbon and soil respiration along a slope in Northeast China. Ecological Processes 8:28

doi: 10.1186/s13717-019-0184-6
[20]

He ZB, Chen LF, Du J, Zhu X, Lin PF, et al. 2018. Responses of soil organic carbon, soil respiration, and associated soil properties to long‐term thinning in a semiarid spruce plantation in northwestern China. Land Degradation & Development 29:4387−4396

doi: 10.1002/ldr.3196
[21]

Trumbore S. 2000. Age of soil organic matter and soil respiration: radiocarbon constraints on belowground C dynamics. Ecological Applications 10:399−411

doi: 10.2307/2641102
[22]

Ma M, Zang Z, Xie Z, Chen Q, Xu W, et al. 2019. Soil respiration of four forests along elevation gradient in northern subtropical China. Ecology and Evolution 9:12846−12857

doi: 10.1002/ece3.5762
[23]

Lohila A, Aurela M, Regina K, Laurila T. 2003. Soil and total ecosystem respiration in agricultural fields: effect of soil and crop type. Plant and Soil 251:303−317

doi: 10.1023/A:1023004205844
[24]

Wang D, Yu X, Jia G, Qin W, Shan Z. 2019. Variations in soil respiration at different soil depths and its influencing factors in forest ecosystems in the mountainous area of North China. Forests 10:1081

doi: 10.3390/f10121081
[25]

Steenberg JWN, Millward AA, Nowak DJ, Robinson PJ, Ellis A. 2017. Forecasting urban forest ecosystem structure, function, and vulnerability. Environmental management 59:373−392

doi: 10.1007/s00267-016-0782-3
[26]

Steenberg JWN, Millward AA, Nowak DJ, Robinson PJ. 2017. A conceptual framework of urban forest ecosystem vulnerability. Environmental Reviews 25:115−126

doi: 10.1139/er-2016-0022
[27]

Bremner JM. 1960. Determination of nitrogen in soil by the Kjeldahl method. The Journal of Agricultural Science 55:11−33

doi: 10.1017/S0021859600021572
[28]

Li C, Liu L, Guo B, Zhao J, Ren Y, et al. 2017. Potassium dichromate oxidation methods’ review and application for determination of soil organic matter. Metallurgical Engineering 4:251−259

doi: 10.12677/meng.2017.44036
[29]

Sharma A, Tewari R, Rana SS, Soni R, Soni SK. 2016. Cellulases: classification, methods of determination and industrial applications. Applied biochemistry and biotechnology 179:1346−1380

doi: 10.1007/s12010-016-2070-3
[30]

Vance ED, Brookes PC, Jenkinson DS. 1987. An extraction method for measuring soil microbial biomass C. Soil Biology and Biochemistry 19:703−707

doi: 10.1016/0038-0717(87)90052-6
[31]

Joergensen RG. 1996. The fumigation-extraction method to estimate soil microbial biomass: calibration of the k EC value. Soil Biology and Biochemistry 28:25−31

doi: 10.1016/0038-0717(95)00102-6
[32]

Zheng L, Gao P, Song Y, Wang H, Deng Y. 2023. Dissolved organic phosphorus removal in secondary effluent by ferrate (VI): performance and mechanism. International Journal of Environmental Research and Public Health 20:2849

doi: 10.3390/ijerph20042849
[33]

Deng W, Wang X, Hu H, Zhu M, Chen J, et al. 2022. Variation characteristics of soil organic carbon storage and fractions with stand age in north subtropical Quercus acutissima Carruth. Forest in China. Forests 13:1649

doi: 10.3390/f13101649
[34]

Lan J, Xiao S, Lin J, Shen Y. 2017. Effect of land use types on soil light and heavy fraction organic carbon in Karst mountain area. Acta Agriculturae Zhejiangensis 29:1720−1725

doi: 10.3969/j.issn.1004-1524.2017.10.18
[35]

Liaw A, Wiener M. 2002. Classification and Regression by randomForest. R News 23:19−22

[36]

Tang S, Ma Q, Marsden KA, Chadwick DR, Luo Y, et al. 2023. Microbial community succession in soil is mainly driven by carbon and nitrogen contents rather than phosphorus and sulphur contents. Soil Biology and Biochemistry 180:109019

doi: 10.1016/j.soilbio.2023.109019
[37]

Tomar U, Baishya R. 2020. Seasonality and moisture regime control soil respiration, enzyme activities, and soil microbial biomass carbon in a semi-arid forest of Delhi, India. Ecological Processes 9:50

doi: 10.1186/s13717-020-00252-7
[38]

Ali RS, Ingwersen J, Demyan MS, Funkuin YN, Wizemann HD, et al. 2015. Modelling in situ activities of enzymes as a tool to explain seasonal variation of soil respiration from agro-ecosystems. Soil Biology and Biochemistry 81:291−303

doi: 10.1016/j.soilbio.2014.12.001
[39]

Fang C, Moncrieff JB. 2005. The variation of soil microbial respiration with depth in relation to soil carbon composition. Plant and Soil 268:243−253

doi: 10.1007/s11104-004-0278-4
[40]

Kittredge HA, Cannone T, Funk J, Chapman SK. 2018. Soil respiration and extracellular enzyme production respond differently across seasons to elevated temperatures. Plant and Soil 425:351−361

doi: 10.1007/s11104-018-3591-z
[41]

Fan Z, Lu S, Liu S, Li Z, Hong J, et al. 2020. The effects of vegetation restoration strategies and seasons on soil enzyme activities in the Karst landscapes of Yunnan, southwest China. Journal of Forestry Research 31:1949−1957

doi: 10.1007/s11676-019-00959-0
[42]

Marinos RE, Bernhardt ES. 2018. Soil carbon losses due to higher pH offset vegetation gains due to calcium enrichment in an acid mitigation experiment. Ecology 99:2363−2373

doi: 10.1002/ecy.2478
[43]

Lai L, Zhao X, Jiang L, Wang Y, Luo L, et al. 2012. Soil respiration in different agricultural and natural ecosystems in an arid region. PLoS One 7:e48011

doi: 10.1371/journal.pone.0048011
[44]

Priess JA, de Koning GHJ, Veldkamp A. 2001. Assessment of interactions between land use change and carbon and nutrient fluxes in Ecuador. Agriculture, Ecosystems & Environment 85:269−279

doi: 10.1016/S0167-8809(01)00193-1
[45]

Haaf D, Six J, Doetterl S. 2021. Global patterns of geo-ecological controls on the response of soil respiration to warming. Nature Climate Change 11:623−627

doi: 10.1038/s41558-021-01068-9
[46]

Baldrian P, Merhautová V, Petránková M, Cajthaml T, Šnajdr J. 2010. Distribution of microbial biomass and activity of extracellular enzymes in a hardwood forest soil reflect soil moisture content. Applied Soil Ecology 46:177−182

doi: 10.1016/j.apsoil.2010.08.013
[47]

Zhao S, Li K, Zhou W, Qiu S, Huang S, et al. 2016. Changes in soil microbial community, enzyme activities and organic matter fractions under long-term straw return in north-central China. Agriculture, Ecosystems & Environment 216:82−88

doi: 10.1016/j.agee.2015.09.028
[48]

Dick WA, Cheng L, Wang P. 2000. Soil acid and alkaline phosphatase activity as pH adjustment indicators. Soil Biology and Biochemistry 32:1915−1919

doi: 10.1016/S0038-0717(00)00166-8
[49]

Wang Y, Zheng M, Wang S, Mao J, Mo J. 2021. Effects of long-term nitrogen and phosphorus additions on soil enzyme activities related N and P cycle in two plantations in South China. Journal Of Tropical And Subtropical Botany 29(3):244−250

doi: 10.11926/jtsb.4293
[50]

Qi R, Li J, Lin Z, Li Z, Li Y, et al. 2016. Temperature effects on soil organic carbon, soil labile organic carbon fractions, and soil enzyme activities under long-term fertilization regimes. Applied Soil Ecology 102:36−45

doi: 10.1016/j.apsoil.2016.02.004
[51]

Cao S, Yang Z, Zheng M, Wang H, Hu X, et al. 2018. Effects of conversion of natural forests to plantations on mineralization of soil organic carbon and nitrogen in subtropical China. Hans Journal of Agricultural Sciences 8(10):1132−1140

doi: 10.12677/HJAS.2018.810166
[52]

Bujalský L, Kaneda S, Dvorščík P, Frouz J. 2014. In situ soil respiration at reclaimed and unreclaimed post-mining sites: responses to temperature and reclamation treatment. Ecological Engineering 68:53−59

doi: 10.1016/j.ecoleng.2014.03.048
[53]

Ladd JN, Amato M, van Veen HA. 2004. Soil microbial biomass: its assay and role in turnover of organic matter C and N. Soil Biology and Biochemistry 36:1369−1372

doi: 10.1016/j.soilbio.2004.05.001
[54]

Durán J, Morse JL, Groffman PM, Campbell JL, Christenson LM, et al. 2014. Winter climate change affects growing‐season soil microbial biomass and activity in northern hardwood forests. Global Change Biology 20:3568−3577

doi: 10.1111/gcb.12624
[55]

Lou Y, Li Z, Zhang T, Liang Y. 2004. CO2 emissions from subtropical arable soils of China. Soil Biology and Biochemistry 36:1835−1842

doi: 10.1016/j.soilbio.2004.05.006
[56]

Dhakal K, Parajuli M, Jian S, Li J, Nandwani D. 2022. Responses of soil heterotrophic respiration and microbial biomass to organic and conventional production systems. Frontiers in Soil Science 2:999139

doi: 10.3389/fsoil.2022.999139
[57]

Epron D, Le Dantec V, Dufrene E, Granier A. 2001. Seasonal dynamics of soil carbon dioxide efflux and simulated rhizosphere respiration in a beech forest. Tree Physiology 21:145−152

doi: 10.1093/treephys/21.2-3.145
[58]

Chen Q, Wang Q, Han X, Wan S, Li L. 2010. Temporal and spatial variability and controls of soil respiration in a temperate steppe in northern China. Global Biogeochemical Cycles 24:2009GB003538

doi: 10.1029/2009gb003538
[59]

Xiao Y, Huang Z, Lu X. 2015. Changes of soil labile organic carbon fractions and their relation to soil microbial characteristics in four typical wetlands of Sanjiang Plain, Northeast China. Ecological Engineering 82:381−389

doi: 10.1016/j.ecoleng.2015.05.015
[60]

Dai SS, Li LJ, Ye R, Zhu-Barker X, Horwath WR. 2017. The temperature sensitivity of organic carbon mineralization is affected by exogenous carbon inputs and soil organic carbon content. European journal of soil biology 81:69−75

doi: 10.1016/j.ejsobi.2017.06.010
[61]

Cleveland CC, Nemergut DR, Schmidt SK, Townsend AR. 2007. Increases in soil respiration following labile carbon additions linked to rapid shifts in soil microbial community composition. Biogeochemistry 82:229−240

doi: 10.1007/s10533-006-9065-z
[62]

Wu J, Chen ST, Hu ZH, Zhang X. 2015. Soil microbial respiration under different soil temperature conditions and its relationship to soil dissolved organic carbon and invertase. Environmental Science 36:1497−1506

doi: 10.13227/j.hjkx.2015.04.050
[63]

Chen J, Luo Y, García-Palacios P, Cao J, Dacal M, et al. 2018. Differential responses of carbon-degrading enzymes activities to warming: implications for soil respiration. Global Change Biology 24:4816−4826

doi: 10.1111/gcb.14394
[64]

Bian H, Li C, Zhu J, Xu L, Li M, et al. 2022. Soil moisture affects the rapid response of microbes to labile organic C addition. Frontiers in Ecology and Evolution 10:857185

doi: 10.3389/fevo.2022.857185
[65]

Wood TE, Detto M, Silver WL. 2013. Sensitivity of soil respiration to variability in soil moisture and temperature in a humid tropical forest. PLoS One 8:e80965

doi: 10.1371/journal.pone.0080965