Skip to main content
Log in

Is elemental stoichiometry (C, N, P) of soil and soil microbial biomass influenced by management modes and soil depth in agro-pastoral transitional zone of northern China?

  • Soils, Sec 1 • Soil Organic Matter Dynamics and Nutrient Cycling • Research Article
  • Published:
Journal of Soils and Sediments Aims and scope Submit manuscript

Abstract

Purpose

Soil and soil microbial biomass carbon (C), nitrogen (N), and phosphorus (P) are the most common elements and key macronutrients that play an important role in assessing soil ecosystem functions degradation and restoration mechanism. However, the effects of interactions of soil depth and management modes on them remain elusive. Here, we compared changes in soil C, N, and P contents and their stoichiometry properties along soil profile to evaluate the effects of interactions.

Materials and methods

In this paper, we first choose three grassland with different management modes on adjacent grassland areas in the traditional agro-pastoral transitional zone of northern China (APTZNC), including grazing grassland (GG), enclosed grassland (EG), and abandoned cropland (AC). These grasslands have been differently managed since 2000. Then, we set up an experiment using soil samples with different depths (0–10, 10–20, 20–30, and 30–40 cm) were collected from three different types of grassland to evaluate the effects interactions of soil depth and grassland management modes on soil and soil microbial biomass C, N, and P stoichiometry.

Results and discussion

Key findings were that (1) concentrations of C, N, and P all decreased deeper within the soil layer, while C:N, C:P, and N:P showed no similar varying trends; (2) the concentrations of C, N, and microbial biomass N (MBN) were the highest in GG, while the concentrations of P, microbial biomass C (MBC) and microbial biomass P (MBP) were the highest in EG; (3) the C:N ratio in APTZNC was relatively high than that in the Chinese and global scales, while the N:P ratio in APTZNC was lower; (4) soil C, N, and P were correlated with MBN, while they were not correlated with MBP, soil MBC:MBN and MBC:MBP were correlated with C:N and C:P, while soil MBN:MBP was not correlated with N:P.

Conclusions

The vertical distribution of soil and soil microbial biomass C, N, and P are consistent, but the stoichiometric ratios of C, N, and P have strong stability. The grassland conversion changed the input of nutrients and affected the storage of soil microbial biomass. Soil was restricted by N in APTZNC. MBP is more reliable than MBN in evaluating soil fertility.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3
Fig. 4
Fig. 5

Similar content being viewed by others

Data availability

The data presented in this study are available on request from the corresponding author. The data are not publicly available due to privacy.

References

  • 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. Appl Soil Ecol 46:177–182

    Google Scholar 

  • Bin ZY, Wang JJ, Zhang WP, Xu DH, Cheng XH, Li KJ, Cao DH (2014) Effects of N addition on ecological stoichiometric characteristics in six dominant plant species of alpine meadow on the Qinghai-Xizang Plateau. China J Plant Ecol 38:231–237 (in Chinese)

    Google Scholar 

  • Bing HJ, Wu YH, Zhou J, Sun HY, Luo J, Wang JP, Yu D (2016) Stoichiometric variation of carbon, nitrogen, and phosphorus in soils and its implication for nutrient limitation in alpine ecosystem of Eastern Tibetan Plateau. J Soils Sediments 16:405–416

    CAS  Google Scholar 

  • Brockett BFT, Prescott CE, Grayston SJ (2012) Soil moisture is the major factor influencing microbial community structure and enzyme activities across seven biogeoclimatic zones in western Canada. Soil Biol Biochem 44:9–20

    CAS  Google Scholar 

  • Bryan BA, Gao L, Ye YQ, Sun XF, Connor JD, Crossman ND, Stafford-Smith M, Wu JG, He CY, Yu DY, Liu ZF, Li A, Huang QX, Ren H, Deng XZ, Zheng H, Niu JM, Han GD, Hou XY (2018) China’s response to a national land-system sustainability emergency. Nature 559:193–204

    CAS  Google Scholar 

  • Bui EN, Henderson BL (2013) C:N: P stoichiometry in Australian soils with respect to vegetation and environmental factors. Plant Soil 373:553–568

    CAS  Google Scholar 

  • Cao JJ, Holden NM, Qin YY, Song XY (2012) Potential use of willingness to accept (WTA) to compensate herders in Maqu county, China, for reduced stocking. Rangeland Ecol Manag 65:533–537

    Google Scholar 

  • Cao JJ, Wei C, Adamowski JF, Biswas A, Feng Q (2021) On China’s Qinghai-Tibetan Plateau, duration of grazing exclosure alters R: S ratio, root morphology and attending root biomass. Soil Tillage Res 209:104969

    Google Scholar 

  • Chen X, Feng JG, Ding ZJ, Tang M, Zhu B (2022) Changes in soil total, microbial and enzymatic C-N-P contents and stoichiometry with depth and latitude in forest ecosystems. Sci Total Environ 816:151583

    CAS  Google Scholar 

  • Chen XY, Zhang HJ, Yao XD, Zeng WJ, Wang W (2021) Latitudinal and depth patterns of soil microbial biomass carbon, nitrogen and phosphorus in grasslands of an agro-pastoral ecotone. Land Degrad Dev 32:3833–3846

    Google Scholar 

  • Chen YL, Chen LY, Peng YF, Ding JZ, Li F, Yang GB, Kou D, Liu L, Fang K, Zhang BB, Wang J, Yang YH (2016) Linking microbial C:N: P stoichiometry to microbial community and abiotic factors along a 3500 km grassland transect on the Tibetan Plateau. Glo Ecol Biogeogr 25:1416–1427

    Google Scholar 

  • Chen ZZ, Wang SP, Wang YF (2002) China’s typical grassland ecosystem. Sci Press, Beijing

    Google Scholar 

  • Clemmensen KE, Bahr A, Ovaskainen O, Dahlberg A, Ekblad A, Wallander H, Stenlid J, Finlay RD, Wardle DA, Lindahl BD (2013) Roots and associated fungi drive long-term carbon sequestration in boreal forest. Science 339:1615–1618

    CAS  Google Scholar 

  • Cleveland CC, Liptzin CD (2007) C:N: P stoichiometry in soil: is there a “redfield ratio” for the microbial biomass? Biogeochemistry 85:235–252

    Google Scholar 

  • Dong XY, Fu H, Li XD, Niu DC, Guo D, Li XD (2010) Effects on plant biomass and CNP contents of plants in grazed and fenced steppe grasslands of the Loess Plateau. Acta Pratacult Sin 19:175–182 (in Chinese)

    Google Scholar 

  • Fanelli G, Lestini M, Sauli AS (2008) Floristic gradients of herbaceous vegetation and P/N ratio in soil in a Mediterranean area. Plant Ecol 194:231–242

    Google Scholar 

  • Fang XM, Wang QL, Zhou WM, Zhou W, Wei YW, Niu LJ, Dai LM (2014) Land use effects on soil organic carbon, microbial biomass and microbial activity in Changbai Mountains of northeast China. China Geogra Sci 24:297–306

    Google Scholar 

  • Gao JL, Luo FM, Gao Y, Dang XH, Meng ZJ, Chen XN, Duan N (2019) Ecological soil C, N, and P stoichiometry of different land use patterns in the agriculture-pasture ecotone of Northern China. Acta Ecol Sin 39:5594–5602 (in Chinese)

    CAS  Google Scholar 

  • Gao Y, He N, Yu G, Chen W, Wang Q (2014) Long-term effects of different land use types on C, N, and P stoichiometry and storage in subtropical ecosystems: a case study in China. Ecol Eng 67:171–181

    Google Scholar 

  • Groppo JD, Lins SRM, Camargo PB, Assad ED, Pinto HS, Martins SC, Salgado PR, Evangelista B, Vasconcellos E, Sano EE, Pavão E, Luna R, Martinelli LA (2015) Changes in soil carbon, nitrogen, and phosphorus due to land-use changes in Brazil. Biogeosciences 12:4765–4780

    Google Scholar 

  • Guo MY, Zhao KT, You JC, Xu LJ, Wang LJ, Jia SJ, Xin XP (2012) Soil microbial characteristic and soil respiration in grassland under different use patterns. Acta Agrestia Sin 20:42–48 (in Chinese)

    CAS  Google Scholar 

  • Güsewell S (2005) High nitrogen: phosphorus ratios reduce nutrient retention and second-year growth of wetland sedges. New Phytol 166:537–550

    Google Scholar 

  • Hall EK, Maixner F, Franklin O, Daims H, Richter A, Battin T (2011) Linking microbial and ecosystem ecology using ecological stoichiometry: a synthesis of conceptual and empirical approaches. Ecosystems 14:261–273

    Google Scholar 

  • Han YH, Dong SK, Zhao ZZ, Sha W, Shuai Li, Shen H, Xiao JN, Zhang J, Wu XY, Jiang XM (2019) Response of soil nutrients and stoichiometry to elevated nitrogen deposition in alpine grassland on the Qinghai-Tibetan Plateau. Geoderma 343:263–268

    CAS  Google Scholar 

  • He FC, Zhang JB, Xing PF, Zhao X, Ren GH (2019) Effects of enclosure on the eco-stoichiometric characteristics of carbon, nitrogen and phosphorus in Leymus secalinus grassland on the North Shanxi and its relationship with plants diversity. Acta Agrestia Sin 27:644–650 (in Chinese)

    CAS  Google Scholar 

  • Hood JM, Sterner R (2010) Diet mixing: do animals integrate growth or resources across temporal heterogeneity? Am Nat 176:651–663

    Google Scholar 

  • Jia Y, Xu BC, Li FM, Wang XL (2007) Availability and contributions of soil phosphorus to forage production of seeded alfalfa in semiarid Loess Plateau. Acta Bot Sin 27:42–47 (in Chinese)

    CAS  Google Scholar 

  • Jiang HL, Xu X, Guan MX, Wang LF, Huang YM, Jiang Y (2020) Determining the contributions of climate change and human activities to vegetation dynamics in agro-pastural transitional zone of northern China from 2000 to 2015. Sci Total Environ 718:134871

    CAS  Google Scholar 

  • Jobbágy EG, Jackson RB (2000) The vertical distribution of soil organic carbon and its relation to climate and vegetation. Ecol Appl 10:423–436

    Google Scholar 

  • Kong X, Zhang F, Wei Q, Xu Y, Hui J (2006) Influence of land use change on soil nutrients in an intensive agricultural region of North China. Soil till Res 88:85–94

    Google Scholar 

  • Kooijman AM, Jongejans J, Sevink J (2005) Parent material effects on Mediterranean woodland ecosystems in NE Spain. Catena 59:55–68

    CAS  Google Scholar 

  • Li JJ, Shi YN, Shao XQ (2018a) Seasonal dynamic and correlation analysis of nitrogen/phosphorus ratio of plant and soil in grassland of the agro-pastoral ecotone. Ecol Environ Sci 27:671–676

    Google Scholar 

  • Li Q, Yang J, Song BY, Ma WH, Zhao LQ, Zhang LX, Hou H (2014) The impacts of different enclosure durations on degraded Stipa grandis grassland productivity and soil carbon and nitrogen storage. China J Ecol 33:896–901 (in Chinese)

    Google Scholar 

  • Li S, Xu J, Tang S, Zhan Q, Hao B (2020) A meta-analysis of carbon, nitrogen and phosphorus change in response to conversion of grassland to agricultural land. Geoderma 363:114149

    CAS  Google Scholar 

  • Li XZ (2001) Effects of grazing on phosphorus stock and forms in chestnut soil. Acta Pratacul Sin 10:28–32 (in Chinese)

    Google Scholar 

  • Li Y, Wu JS, Liu SL, Shen JL, Huang DY, Su YR, Wei WX, Syers JK (2012) Is the C:N: P stoichiometry in soil and soil microbial biomass related to the landscape and land use in southern subtropical China? Glob Biogeochem Cy 26:4002

    Google Scholar 

  • Li ZL, Tian DS, Wang BX, Wang JS, Wang S, Chen HYH, Xu XF, Wang CH, He NP, Niu SL (2018b) Microbes drive global soil nitrogen mineralization and availability. Glob Chang Biol 25:1078–1088

    Google Scholar 

  • Lilienfein J, Wilcke W, Thomas R, Vilela L, Lima SDC, Zech W (2002) Effects of Pinus caribaea forests on the C, N, P and S status of Brazilian savanna Oxisols. For Ecol Manag 147:171–182

    Google Scholar 

  • Lin HY, Zhou JC, Zeng QX, Su J, Xie H, Liu YY, Mei KC, Wu Y, Yuan XC, Wu JM, Su XC, Cheng DL, Chen YM (2021) Soil enzyme stoichiometry revealed the changes of soil microbial carbon and phosphorus limitation along an elevational gradient in a Pinus taiwanensis forest of Wuyi Mountains, Southeast China. China J App Ecol 33:33–41 (in Chinese)

    Google Scholar 

  • Liu M, Liu GH, Wu X, Wang H, Chen L (2014) Vegetation traits and soil properties in response to utilization patterns of grassland in Hulun Buir City, Inner Mongolia, China. Chin Geogra Sci 24:471–478

    Google Scholar 

  • Liu X, Ma J, Ma ZW, Li LH (2017) Soil nutrient contents and stoichiometry as affected by land-use in an agro-pastoral region of northwest China. Catena 150:146–153

    CAS  Google Scholar 

  • Liu Y, Zheng FL, An SS, He WX, Guo M, Lü CH (2010) Soil microbial biomass characteristics in response to vegetation restoration on abandoned lands in Yangou watershed of China. J Plant Nutrition Fertil 16:824–832 (in Chinese)

    Google Scholar 

  • Lü XT, Freschet GT, Kazakou E, Wang ZW, Zhou LS, Han XG (2015) Contrasting responses in leaf nutrient-use strategies of two dominant grass species along a 30-yr temperate steppe grazing exclusion chronosequence. Plant Soil 387:69–79

    Google Scholar 

  • Ma HB, Xie YZ (2008) Plant compensatory growth under different grazing intensities in desert Steppe. Sci Agric Sin 3645–3650 (in Chinese)

  • Ma J, Li LH, Guo LP, Bai L, Zhang JR, Chen ZH, Sajjad A (2015) Variation in soil nutrients in grasslands along the Kunes River in Xinjiang, China. Chem Ecol 31:111–122

    CAS  Google Scholar 

  • Ma J, Tang HP (2011) Variations of soil respiration rate and its temperature sensitivity among different land use types in the agro-pastoral ecotone of Inner Mongolia. China J Plant Ecol 35:167–175 (in Chinese)

    Google Scholar 

  • Maharjan M, Sanaullah S, Razavi BS, Kuzyakov Y (2017) Effect of land use and management practices on microbial biomass and enzyme activities in subtropical top and sub-soils. Appl Soil Ecol 113:22–28

    Google Scholar 

  • Maranguit D, Guillaume T, Kuzyakov Y (2017) Land-use change affects phosphorus fractions in highly weathered tropical soils. Catena 149:385–393

    CAS  Google Scholar 

  • Meng L, Qu FZ, Bi XL, Xia JB, Li YZ, Wang XH, Yu JB (2021) Elemental stoichiometry (C, N, P) of soil in the yellow river delta nature reserve: understanding n and p status of soil in the coastal estuary. Sci Total Environ 751:141737

    CAS  Google Scholar 

  • Nie XQ, Wang D, Zhou GY, Xiong F, Du YG (2021) Soil microbial biomass carbon, nitrogen, phosphorus and their stoichiometric characteristics in alpine wetlands in the Three Rivers Sources Region. China J Plant Ecol 45:1–10 (in Chinese)

    Google Scholar 

  • Ouyang W, Xu YM, Hao FH, Wang XL, Chen SY, Lin CY (2013) Effect of long-term agricultural cultivation and land use conversion on soil nutrient contents in the Sanjiang Plain. Catena 104:243–250

    CAS  Google Scholar 

  • Pabst H, Kühnel A, Kuzyakov Y (2013) Effect of land-use and elevation on microbial biomass and water extractable carbon in soils of Mt. Kilimanjaro ecosystems. Appl Soil Ecol 67:10–19

    Google Scholar 

  • Pan YL, Fang F, Tang HP (2021) Patterns and internal stability of carbon, nitrogen and phosphorus in soils and soil microbial biomass in terrestrial ecosystems in China: a data synthesis. Forests 12:1544

    Google Scholar 

  • Persson J, Fink P, Goto A (2010) To be or not to be what you eat: regulation of stoichiometric homeostasis among autotrophs and heterotrophs. Oikos 119:741–751

    CAS  Google Scholar 

  • Poeplau C, Don A (2013) Sensitivity of soil organic carbon stocks and fractions to different land-use changes across Europe. Geoderma 192:189–201

    CAS  Google Scholar 

  • Reeder JD, Schuman GE (2002) Influence of livestock grazing on C sequestration in semi-arid mixed-grass and short-grass rangelands. Environ Pollut 116:457–463

    CAS  Google Scholar 

  • Ren CJ, Zhang W, Zhong ZK, Han XH, Yang GH, Feng YZ, Ren GX (2018) Differential responses of soil microbial biomass, diversity, and compositions to altitudinal gradients depend on plant and soil characteristics. Sci Total Environ 610–611

  • Sardans J, Rivas-Ubach A, Peñuelas J (2012) The C:N: P stoichiometry of organisms and ecosystems in a changing world: a review and perspectives. Perspect Plant Ecol Evol Syst 14:33–47

    Google Scholar 

  • Savadogo P, Sawadogo L, Tiveau D (2007) Effects of grazing intensity and prescribed fire on soil physical and hydrological properties and pasture yield in the savanna woodlands of Burkina Faso. Agric Ecosyst Environ 118:80–92

    Google Scholar 

  • Singh JS, Gupta VK (2018) Soil microbial biomass: a key soil driver in management of ecosystem functioning. Sci Total Environ 634:497–500

    CAS  Google Scholar 

  • Šnajdr J, Valášková V, Merhautová V, Herinková J, Cajthaml T, Baldrian P (2008) Spatial variability of enzyme activities and microbial biomass in the upper layers of Quercus petraea forest soil. Soil Biol Biochem 40:2068–2075

    Google Scholar 

  • Song XY, Wei ZJ, Zheng SH, Li LH, Chang SJ, Yang Y, Liu AJ (2018) Impacts of different disturbances on ecosystem characteristic of typical steppe in Hulun Buir. Ecol Environ Sci 27:1405–1410 (in Chinese)

    Google Scholar 

  • Song YT, Zhou DW, Zhang HX, Li GD, Jin YH, Li Q (2013) Effects of vegetation height and density on soil temperature variations. Chinese Sci Bull 58:1–6

    Google Scholar 

  • Sternberg M, Gutman M, Perevolotsky A (2000) Vegetation response to grazing management in a Mediterranean herbaceous community: a functional group approach. J Appl Ecol 37:224–237

    Google Scholar 

  • Sterner RW, Elser JJ, Peter V (2002) Ecological stoichiometry: the biology of elements from molecules to the biosphere. Princeton Univ Press, Publisher, p 439

    Google Scholar 

  • Sun H, Zheng D, Yao TD, Zhang YL (2012) Protection and construction of the national ecological security shelter zone on Tibetan Plateau (In Chinese with English Abstract). Acta Geol Sin-Engl Ed 67:4–12 (in Chinese)

    Google Scholar 

  • Tao Y, Wu GL, Liu YB, Zhang YM (2017) Soil stoichiometry and their influencing factors in typical shrub communities in the Gurbantunggut desert, China. J Desert Res 37:305–314 (in Chinese)

    Google Scholar 

  • Tesfaye MA, Bravo F, Ruiz-Peinado R, Pando V, Bravo-Oviedo A (2016) Impact of changes in land use, species and elevation on soil organic carbon and total nitrogen in Ethiopian Central Highlands. Geoderma 261:70–79

    CAS  Google Scholar 

  • Tian HJ, Cao CX, Chen W, Bao SN, Yang B, Myneni RB (2015) Response of vegetation activity dynamic to climatic change and ecological restoration programs in Inner Mongolia from 2000 to 2012. Ecol Eng 82:276–289

    Google Scholar 

  • Tian HQ, Chen GS, Zhang C, Melillo JM, Hall CAS (2010) Pattern and variation of C:N: P ratios in Chin’s soils: a synthesis of observational date. Biogeochem 98:139–151

    CAS  Google Scholar 

  • Tilman D, Fargione J, Wolff B, D’Antonio C, Dobson A, Howarth R, Schindler D, Schlesinger WH, Simberloff D, Swackhamer D (2001) Forecasting agriculturally driven global environmental change. Science 292:281–284

    CAS  Google Scholar 

  • Tiwari S, Singh C, Boudh S, Kumar Rai P, Gupta VK, Singh JS (2019) Land use change: a key ecological disturbance declines soil microbial biomass in dry tropical uplands. J Environ Manage 242:1–10

    CAS  Google Scholar 

  • Törmänen T, Kitunen V, Lindroos AJ, Heikkinen J, Smolander A (2018) How do logging residues of different tree species affect soil N cycling after final felling? For Ecol Manag 427:182–189

    Google Scholar 

  • Trivedi P, Anderson IC, Singh BK (2013) Microbial modulators of soil carbon storage: integrating genomic and metabolic knowledge for global prediction. Trends Microbiol 21:641–651

    CAS  Google Scholar 

  • Van Leeuwen JP, Djukic I, Bloem J, Lehtinen T, Hemerika L, de Ruiterag PC, Lairb GJ (2017) Effects of land use on soil microbial biomass, activity and community structure at different soil depths in the Danube floodplain. Eur J Soil Biol 79:14–20

    Google Scholar 

  • Vance ED, Brookes PC, Jenkinson DS (1987) An extraction method for measuring soil microbial biomass C. Soil Biol Biochem 19:703–707

    CAS  Google Scholar 

  • Walker TW, Adams AFR (1958) Studies on soil organic matter: influence of phosphorus content of parent materials on accumulations of carbon, nitrogen, sulfur, and organic phosphorus in grassland soils. Soil Sci 85:307–318

    CAS  Google Scholar 

  • Wang D, Huang XD, Qiao N, Geng QL, Liu YZ, Song HQ, Yang ZL, Liu C, Wang G (2021a) Effects of mowing and fertilization on soil quality in a semiarid grassland of North China. Land Degrad Dev 32:1656–1666

    Google Scholar 

  • Wang HH, Ren TB, Müller K, Van Zwieten L, Wang HL, Feng HL, Xu CS, Yun F, Ji XM, Yin QY, Shi HZ, Liu GS (2021b) Soil type regulates carbon and nitrogen stoichiometry and mineralization following biochar or nitrogen addition. Sci Total Environ 753:1–9

    Google Scholar 

  • Wang LH, Qiu ZP, Gao HL, Zhang XC (2013) Phosphorous distribution of plant-soil system in a Stipa bungeana slope land in the agro-pastoral transitional zone. J Plant Nutrition Fertil 19:1192–1199

    CAS  Google Scholar 

  • Wang BR, Yang JJ, An SS, Zhang HX, Bai XJ (2018) Effects of vegetation and topography features on ecological stoichiometry of soil and soil microbial biomass in the hilly-gully region of the Loess Plateau, China. Chin J Appl Ecol 29:247–259 (in Chinese)

  • Wang SQ, Yu GR (2008) Ecological stoichiometry characteristics of ecosystem carbon, nitrogen and phosphorus elements. Acta Ecol Sin 28:3937–3947 (in Chinese)

    CAS  Google Scholar 

  • Wang W, Sardans J, Zeng C, Li ZY, Peñuelas J (2014) Responses of soil nutrient concentrations and stoichiometry to different human land uses in a subtropical tidal wetland. Geoderma 232:459–470

    Google Scholar 

  • Wang Y, Ren Z, Ma PP, Wang ZM, Niu DC, Fu H, Elser JJ (2020) Effects of grassland degradation on ecological stoichiometry of soil ecosystems on the Qinghai-Tibet Plateau. Sci Total Environ 722:137910

    CAS  Google Scholar 

  • Wood T, Bormann FH, Voigt GK (1984) Phosphorus cycling in a northern hardwood forest: biological and chemical control. Science 223:391–393

    CAS  Google Scholar 

  • Wu GL, Du GZ, Liu ZH, Thirgood S (2009) Effect of fencing and grazing on a Kobresia-dominated meadow in the Qinghai-Tibetan Plateau. Plant Soil 319:115–126

    CAS  Google Scholar 

  • Wu W, He XD, Zhou QX (2010) Review on N: P stoichiometry in ecosystem. J Desert Res 30:296–302

    Google Scholar 

  • Wu YQ, Tian Y, Zhou JQ, Zhang KB (2019) Ecological stoichiometric characteristics of soil carbon, nitrogen, and phosphorus under different grazing regimes. China J Appl Environ Biol 25:801–807 (in Chinese)

    Google Scholar 

  • Xia CX, Yu D, Wang Z, Xie D (2014) Stoichiometry patterns of leaf carbon, nitrogen and phosphorous in aquatic macrophytes in eastern China. Ecol Eng 70:406–413

    Google Scholar 

  • Xin ZB, Yu XX, Zhang ML, Li QY, Li HG (2012) Soil nutrient characteristics under different land management modes in a Gully-hilly region of the Loess Plateau. Arid Zone Res 29:379–384 (in Chinese)

    Google Scholar 

  • Xu X, Jiang HL, Tian XY, Guan MX, Wang LF (2019) Response of the plant and soil features to degradation grades in semi-arid grassland of the inner Mongolia, China. IOP Conf Ser Mater Sci Eng 484:012039

    CAS  Google Scholar 

  • Xu X, Schimel JP, Thornton PE, Song X, Yuan FM, Goswami S (2014) Substrate and environmental controls on microbial assimilation of soil organic carbon: a framework for Earth system models. Ecol Lett 17:547–555

    Google Scholar 

  • Xu X, Thornton PE, Post WM (2013) A global analysis of soil microbial biomass carbon, nitrogen and phosphorus in terrestrial ecosystems. Glob Ecol Biogeogr 22:737–749

    Google Scholar 

  • Yan YC, Tang HP, Xin XP, Wang X (2009) Advances in research on the effects of exclosure on grasslands. Acta Ecol Sin 29:5039–5046 (in Chinese)

    Google Scholar 

  • Yang XM, Chen HQ, Gong YS, Zheng XH, Fan MS, Kuzyakov Y (2015) Nitrous oxide emissions from an agro-pastoral ecotone of northern China depending on land uses. Agric Ecosyst Environ 213:241–251

    CAS  Google Scholar 

  • Yi ZG, Yi WM, Ding MM, Zhou LX, Zhang DQ, Wang XM (2006) Vertical distribution of soil organic carbon, soil microbial biomass and soil CO2 concentration in Dinghushan Biosphere Reserve. Ecol Environ 15:611–615 (in Chinese)

    Google Scholar 

  • Zeng QC, Li X, Dong YH, An SS (2016) Ecological stoichiometry of soils in the Yanhe Watershed in the Loess Plateau: the influence of different vegetation zones. J Nat Res 31:1881–1891 (in Chinese)

    Google Scholar 

  • Zhang K, Su YZ, Yang R (2019) Variation of soil organic carbon, nitrogen, and phosphorus stoichiometry and biogeographic factors across the desert ecosystem of Hexi Corridor, northwestern China. J Soils Sediment 19:49–57

    Google Scholar 

  • Zhao FZ, Ren CJ, Han XH, Yang GH, Wang J, Doughty R (2018) Changes of soil microbial and enzyme activities are linked to soil C, N and P stoichiometry in afforested ecosystems. For Ecol Manag 427:289–295

    Google Scholar 

  • Zhao H, Sun J, Xu XL, Qin XJ (2017) Stoichiometry of soil microbial biomass carbon and microbial biomass nitrogen in China’s temperate and alpine grasslands. Eur J Soil Biol 83:1–8

    CAS  Google Scholar 

  • Zhao T, Yan H, Jiang YL, Huang YM, An SS (2013) Effects of vegetation types on soil microbial biomass C, N, P on the Loess Hiny Area. Acta Ecol Sin 33:5615–5622 (in Chinese)

    CAS  Google Scholar 

  • Zhou Y, Boutton TW, Wu XB (2018) Soil C:N: P stoichiometry responds to vegetation change from grassland to woodland. Biogeochemistry 140:341–357

    CAS  Google Scholar 

  • Zhu QL, Xing XY, Zhang H (2013) Soil ecological stoichiometry under different vegetation area on loess hilly-gully region. Acta Ecol Sin 33:4674–4682 (in Chinese)

    CAS  Google Scholar 

  • Yang YH, Fang JY, Tang YH, Ji CJ, Zheng CY, He JS, Zhu B (2008) Storage, patterns and controls of soil organic carbon in the Tibetan grasslands. Glob Chang Biol 14:1592–1599

    Google Scholar 

  • Yu YH, Chi YK (2019) Ecological stoichiometric characteristics of soil at different depths in a karst plateau mountain of China. Pol J Environ Stud 29:969–978

    Google Scholar 

Download references

Funding

This study was supported by the National Natural Science Foundation of China Project (Grant No. 31972945). We thank the three anonymous reviewers for their valuable comments on the earliest version of the manuscript.

Author information

Authors and Affiliations

Authors

Contributions

Yunlong Pan: Conceptualization, Methodology, Formal analysis, Visualization, Software, Writing – original draft. Haiping Tang: Supervision, Resources, Writing – review & editing, Data curation, Investigation, Project administration, Funding acquisition. Fei Fang: Data curation, Investigation, Validation, Writing – review & editing. Yonggui Ma & Zhenning Chen: Investigation. All authors have read and agreed to the published version of the manuscript.

Corresponding author

Correspondence to Haiping Tang.

Ethics declarations

Conflict of interest

The authors declare no competing interests.

Additional information

Responsible editor: Zucong Cai

Publisher's Note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Rights and permissions

Springer Nature or its licensor holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law.

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Pan, Y., Tang, H., Fang, F. et al. Is elemental stoichiometry (C, N, P) of soil and soil microbial biomass influenced by management modes and soil depth in agro-pastoral transitional zone of northern China?. J Soils Sediments 23, 32–48 (2023). https://doi.org/10.1007/s11368-022-03300-1

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s11368-022-03300-1

Keywords

Navigation