Welcome to Francis Academic Press

Academic Journal of Environment & Earth Science, 2024, 6(1); doi: 10.25236/AJEE.2024.060114.

The Influence of Different Vegetation Types on Soil C, N, P Content, and Their Stoichiometry in the Eastern Qilian Mountains' Binggou River Basin

Author(s)

Junju Zhou1,2,3, Suhan Shi1,2,3, Jiawei Chen1, Jiarui Wang1

Corresponding Author:
Junju Zhou
Affiliation(s)

1College of Geography and Environment Science, Northwest Normal University, Lanzhou, 730070, China

2Gansu Engineering Research Center of Land Use and Comprehension Consolidation, Lanzhou, 730070, China

3Key Laboratory of Resource Environment and Sustainable Development of Oasis, Lanzhou, Gansu Province, 730070, China

Abstract

To investigate the impact of vegetation types on the ecological stoichiometry of soil carbon, nitrogen, and phosphorus, and to reveal the nutrient limitation and cycling patterns in the terrestrial ecosystem of a tributary, Quanshui River, in the upper reaches of the Shiyang River. The study focused on the marshland of Quanshui River, shrubland of Iris lacteal Pall and Potentilla fruticosa, and the forest of Picea crassifolia. The analysis covered the characteristics of soil organic carbon (SOC), total nitrogen (TN), total phosphorus (TP) content, and stoichiometric ratios in the 0-60cm soil depth across different vegetation types. The results indicated that: (1) In the 0-60cm soil layer, SOC was highest in shrubland, followed by forest and grassland. TN was highest in grassland, followed by forest and shrubland. In the 0-30cm soil layer, grassland exhibited significantly higher TP content compared to forest and shrubland. SOC, TN, and TP content in forest, grassland, and shrubland were higher in the 0-10cm layer compared to the 10-20cm layer. (2) Soil C:N, C:P, and N:P ratios were significantly influenced by different vegetation types. The C:N and C:P ratios were highest in shrubland, followed by forest and grassland. The N:P ratio was highest in grassland, followed by forest and shrubland. The vegetation growth in Quanshui River was found to be more limited by soil nitrogen than phosphorus. Therefore, based on the actual conditions of vegetation types, the rational application of nitrogen and phosphorus fertilizers is recommended to enhance nutrient retention in the soil and maintain ecological balance.

Keywords

Soil carbon; nitrogen and phosphorus; Ecological stoichiometry; Climate and vegetation types; Qilian mountains

Cite This Paper

Junju Zhou, Suhan Shi, Jiawei Chen, Jiarui Wang. The Influence of Different Vegetation Types on Soil C, N, P Content, and Their Stoichiometry in the Eastern Qilian Mountains' Binggou River Basin. Academic Journal of Environment & Earth Science (2024), Vol. 6, Issue 1: 96-108. https://doi.org/10.25236/AJEE.2024.060114.

References

[1] Zhang Yujian, Wang Keqin, Song Yali, et al. Ecological Stoichiometry of Carbon, Nitrogen, and Phosphorus in Five Forest Types in the Subalpine Zone of Central Yunnan. Journal of Ecology and Environmental Sciences, 2019, 28(01): 73-82. DOI: 10.16258/j.cnki.1674-5906.2019.01.009.

[2] Ma Jian, Liu Xiande, Jin Ming, et al. Ecological Stoichiometry of Soil Carbon, Nitrogen, and Phosphorus in Five Typical Shrubland Types in the Qilian Mountains. Acta Botanica Boreali-Occidentalia Sinica, 2021, 41(08): 1391-1400.

[3] Zeng Q, Li X, Dong Y, et al. Soil and plant components ecological stoichiometry in four steppe communities in the Loess Plateau of China[J]. Catena, 2016, 147: 481-488.

[4] Bai Y, Wu J, Clark C M, et al. Grazing alters ecosystem functioning and C: N: P stoichiometry of grasslands along a regional precipitation gradient[J]. Journal of Applied Ecology, 2012, 49(6): 1204-1215.

[5] Jiao F , Shi X R , Han F P ,et al. Increasing aridity, temperature and soil pH induce soil C-N-P imbalance in grasslands[J].Scientific Reports, 2016, 6:19601.DOI:10.1038/srep19601.

[6] Hättenschwiler S, Jørgensen H B. Carbon quality rather than stoichiometry controls litter decomposition in a tropical rain forest[J]. Journal of Ecology, 2010, 98(4): 754-763.

[7] Liu R, Wang D. Soil C, N, P and K stoichiometry affected by vegetation restoration patterns in the alpine region of the Loess Plateau, Northwest China[J]. PloS one, 2020, 15(11): e0241859.

[8] Rong Q, Liu J, Cai Y, et al. Leaf carbon, nitrogen and phosphorus stoichiometry of Tamarix chinensis Lour. In the Laizhou Bay coastal wetland, China[J]. Ecological Engineering, 2015, 76: 57-65.

[9] Li P, Yang Y, Han W, et al. Global patterns of soil microbial nitrogen and phosphorus stoichiometry in forest ecosystems[J]. Global Ecology and Biogeography, 2014, 23(9): 979-987.

[10] Fang Z, Li D D, Jiao F, et al. The latitudinal patterns of leaf and soil C: N: P stoichiometry in the loess plateau of China[J]. Frontiers in Plant Science, 2019, 10: 85.

[11] Liu J, Gou X, Zhang F, et al. Spatial patterns in the C: N: P stoichiometry in Qinghai spruce and the soil across the Qilian Mountains, China[J]. Catena, 2021, 196: 104814.

[12] Wang L, Zhang G, Zhu P, et al. Soil C, N and P contents and their stoichiometry as affected by typical plant communities on steep gully slopes of the Loess Plateau, China[J]. Catena, 2022, 208: 105740.

[13] Delgado-Baquerizo M, Maestre F T, Gallardo A, et al. Decoupling of soil nutrient cycles as a function of aridity in global drylands[J]. Nature, 2013, 502(7473): 672-676.

[14] Xu Cong, Wang Ce, Li Mingyue, et al. Study on Soil Carbon, Nitrogen, and Phosphorus Content and Ecological Stoichiometry Characteristics under Different Land Use Patterns in Anxin County. Journal of Forestry and Ecology, 2020, 35(03): 304-313. DOI: 10.13320/j.cnki.hjfor.2020.0041.

[15] Yan Baolong, Zhao Qingge, Zhang Bo, et al. Influence of Different Vegetation Types on Soil Physical and Chemical Properties and Soil Respiration. Journal of Ecology and Environmental Sciences, 2017, 26(02): 189-195. DOI: 10.16258/j.cnki.1674-5906.2017.02.002.

[16] Wang Kaibo, Shi Weiyu, Shangguan Zhouping. Influence of Natural and Artificial Vegetation Types on Soil Physical and Chemical Properties in the Loess Hilly Region. Transactions of the Chinese Society of Agricultural Engineering, 2012, 28(15): 80-86.

[17] Yang Y, Liu B.Effects of planting Caragana shrubs on soil nutrients and stoichiometries in desert steppe of Northwest China[J].Catena, 2019, 183(10):104213.DOI:10.1016/j.catena.2019.104213.

[18] Guo Chao, Sheng Maoyin, He Yu, et al. Influence of Land Use Patterns on Soil Carbon, Nitrogen, Phosphorus Chemical Stoichiometry Characteristics, and Enzyme Activity in Southwest Karst Region. Soil Bulletin, 2023, 54(02): 382-391. DOI: 10.19336/j.cnki.trtb.2021121002.

[19] Xie Yangyang, Liu Xuyang, Jin Qiang, et al. Characteristics of Soil Carbon, Nitrogen, and Phosphorus and Their Ecological Stoichiometry in Different Habitats in Donghu Wetland, Fuzhou. Journal of Soil and Water Conservation Science, 2023, 21(04): 79-90. DOI: 10.16843/j. sswc. 2023.04.010.

[20] Liu Shuainan, Li Guang, Wu Jiangqi, et al. Soil Nutrient Characteristics under Different Land Types in Hilly Loess Region - Based on Ecological Stoichiometry. Acta Prataculturae Sinica, 2021, 30(03): 200-207.

[21] Zhu Qiulian, Xing Xiaoyi, Zhang Hong, et al. Soil Ecological Stoichiometry Characteristics in Different Vegetation Zones of the Loess Hilly-Gully Region. Acta Ecologica Sinica, 2013, 33(15): 4674-4682.

[22] Zeng Quanchao, Li Xin, Dong Yanghong, et al. Latitude Variation of Soil Properties and Ecological Stoichiometry in Northern Shaanxi Loess Plateau. Journal of Natural Resources, 2015, 30(05): 870-879.

[23] Zang Yan. Variation Law of Soil Organic Carbon, Phosphorus, and Nitrogen Content and Chemical Stoichiometry Characteristics in Soils under Different Vegetation Types. Heilongjiang Water Conservancy Science and Technology, 2023, 51(06): 37-40+73. DOI: 10.14122/j.cnki.hskj. 2023. 06.042.

[24] Guan Shengchao, Zhu Junyi, Liu Xuelian, et al. Characteristics of Soil Carbon, Nitrogen, and Phosphorus Ecological Stoichiometry in Different Vegetation Types in Hanai Wetland. Journal of Tonghua Normal University, 2023, 44(08): 48-55. DOI: 10.13877/j.cnki.cn22-1284.2023.08.009.

[25] Wang Heling. Impact of Land Use on Soil Organic Carbon in the High-Cold Meadow Area of the Eastern Margin of the Qilian Mountains. Lanzhou University, 2014.

[26] Zhang Guangde, Zhao Chuanyan, Rong Zhanlei, et al. Study on Soil Ecological Stoichiometry Characteristics of Different Vegetation Types in the Central Part of the Qilian Mountains. Journal of Lanzhou University (Natural Sciences), 2019, 55(04): 533-540. DOI: 10.13885/j.issn. 0455-2059. 2019.04.017.

[27] Ai Li, Wu Jianguo, Liu Jianquan, et al. Soil Organic Carbon and Total Nitrogen Content and Their Relationship with Altitude, Vegetation, and Climatic Factors in the Middle Section of the Qilian Mountains North Slope. China Horticulture Abstracts, 2010, 26(03): 27-34.

[28] Chen L F,He Z B,Du J,et al. Patterns and environmental controls of soil organic carbon and total nitrogen in alpine ecosystems of northwestern China[J]. Catena: An Interdisciplinary Journal of Soil Science Hydrology-Geomorphology Focusing on Geoecology and Landscape Evolution, 2016.

[29] Niu Y, Kang J, Su H, et al. Elevation Alone Alters Leaf N and Leaf C to N Ratio of Picea crassifolia Kom. in China’s Qilian Mountains[J]. Forests, 2021, 12(10): 1325.

[30] Wan Q, Zhu G , Guo H , et al. Influence of Vegetation Coverage and Climate Environment on Soil Organic Carbon in the Qilian Mountains[J]. Scientific Reports, 2019, 9(1):17623.

[31] Zhao Weijun, Liu Xiande, Jin Ming, et al. Ecological Stoichiometry Characteristics of Carbon, Nitrogen, and Phosphorus in Qinghai Spruce Leaves, Litter, and Soil in the Qilian Mountains. Acta Pedologica Sinica, 2016, 53(02): 477-489.

[32] Zhou Junju, Xiang Juan, Wang Lanying, et al. Relationship between Landscape Pattern and River Water Chemistry in the Bingou River Basin in the Eastern Qilian Mountains. Chinese Journal of Ecology, 2019, 38(12): 3779-3788. DOI: 10.13292/j.1000-4890.201912.032.

[33] Xiang Juan. Influence of Landscape Pattern of Land Use on River Water Chemistry in the Bingou River Basin. Northwest Normal University, 2020. DOI: 10.27410/d.cnki.gxbfu.2020.001103.

[34] Niu Yun, Liu Xiande, Jing Wenmao, et al. Relationship between Soil Characteristics and Vertical Distribution of Vegetation on the North Slope of the Qilian Mountains. Journal of Mountain Science, 2013, 31(05): 527-533. DOI: 10.16089/j.cnki.1008-2786.2013.05.017.

[35] Zhang B J , Zhang G H , Yang H Y ,et al.Soil resistance to flowing water erosion of seven typical plant communities on steep gully slopes on the Loess Plateau of China[J].Catena, 2019, 173:375-383. DOI:10.1016/j.catena.2018.10.036.

[36] Sayer E J .Using experimental manipulation to assess the roles of leaf litter in the functioning of forest ecosystems[J].Biological Reviews, 2006.DOI:10.1017/S1464793105006846.

[37] García-Palacios, Pablo, Shaw E A , Wall D H ,et al.Temporal dynamics of biotic and abiotic drivers of litter decomposition[J].Ecology Letters, 2016, 19(5):554-563.DOI:10.1111/ele.12590.

[38] Jobbagy E , Jackson R B .The Vertical Distribution of Soil Organic Carbon and Its Relation to Climate and Vegetation[J].Ecological Applications, 2000.DOI:10.2307/2641104.

[39] Jackson, R. B et al. Belowground consequences of vegetation change and their treatment in models [J].Ecological Application, 2000,10(2):470-483.

[40] Lo N, Lo T. Species differences in timing of leaf fall and foliage chemistry modify nutrient resorption efficiency in deciduous temperate forest stands[J].Tree Physiology, 2005(8):1001. DOI:10. 1093/ treephys/25.8.1001.

[41] Pei S , Fu H , Wan C .Changes in soil properties and vegetation following exclosure and grazing in degraded Alxa desert steppe of Inner Mongolia, China[J].Agriculture Ecosystems & Environment, 2008, 124(1):33-39.DOI:10.1016/j.agee.2007.08.008.

[42] Li Qiang, Zhou Daowei, Chen Xiaoying. Accumulation, Decomposition, and Role of Aboveground Litter in Terrestrial Ecosystems. Acta Ecologica Sinica, 2014, 34(14): 3807-3819.

[43] Li Peixi, Chu Bingyin, Teng Zhen, et al. Ecological Stoichiometry Characteristics of Carbon, Nitrogen, and Phosphorus in Soils of Different Vegetation Types in the Lakeshore Zone of Chaohu Lake. Pratacultural Science, 2020, 37(08): 1448-1457.

[44] Zhang Y, Li P, Liu X, et al. Effects of farmland conversion on the stoichiometry of carbon, nitrogen, and phosphorus in soil aggregates on the Loess Plateau of China[J].Geoderma, 2019, 351:188-196.DOI:10.1016/j.geoderma.2019.05.037.

[45] Liu X , Ma J , Ma Z W ,et al.Soil nutrient contents and stoichiometry as affected by land-use in an agro-pastoral region of northwest China[J].CATENA, 2016, 150:146-153. DOI:10. 1016/j.catena. 2016. 11.020.

[46] Wang L, Zhang G, Zhu P, et al. Soil C, N and P contents and their stoichiometry as affected by typical plant communities on steep gully slopes of the Loess Plateau, China - ScienceDirect[J]. CATENA, 208[2023-09-20].

[47] Wang Changhui, Xing Xuerong, Han Xingguo. Advances in the Study of Factors Influencing Soil Nitrogen Mineralization in Grassland Ecosystems. Chinese Journal of Applied Ecology, 2004(11): 2184-2188.

[48] He Gaoxun, Wang Yue, Peng Shuxian, et al. Soil Carbon, Nitrogen, and Phosphorus Storage and Ecological Stoichiometry Characteristics under Different Vegetation Restoration in Degraded Mountainous Areas in Central Yunnan. Acta Ecologica Sinica, 2020, 40(13): 4425-4435.

[49] Tian H , Chen G , Zhang C ,et al. Pattern and variation of C:N:P ratios in China's soils: A synthesis of observational data[J].Biogeochemistry, 2010, 98(1-3).DOI:10.1007/s10533-009-9382-0.

[50] Zarei A R , Shabani A , Mahmoudi M R .Susceptibility Assessment of Winter Wheat, Barley and Rapeseed to Drought Using Generalized Estimating Equations and Cross-Correlation Function[J]. Environmental Processes, 2021(2):1-35.DOI:10.1007/s40710-021-00496-1.

[51] Zeng Q , Liu Y , Fang Y ,et al.Impact of vegetation restoration on plants and soil C:N:P stoichiometry on the Yunwu Mountain Reserve of China[J].Ecological Engineering, 2017.DOI:10. 1016/j. ecoleng.2017.10.003.

[52] Tessier J T , Raynal D J .Use of nitrogen to phosphorus ratios in plant tissue as an indicator of nutrient limitation and nitrogen saturation[J].Journal of Applied Ecology, 2003, 40.DOI:10.1046/j. 1365-2664. 2003.00820.x.

[53] Huang C Y. Pedology[M]. Beijing: Chinese Agricultural Press. 2000.

Ben B L , Bailey V L , Min C ,et al.Globally rising soil heterotrophic respiration over recent decades[J]. Nature, 2018, 560(7716):80-83.DOI:10.1038/s41586-018-0358-x.

[54] Tóth J A, Lajtha K, Kotroczó Z, et al. The effect of climate change on soil organic matter decomposition [J]. Acta Silvatica et Lignaria Hungarica, 2007, 3: 75-85.

[55] Wang, L.H.; Gao, J.; Xu, B.; Xue, J.Y. Effect of increasing precipitation on soil organic carbon mineralization in yunnan pine plantation in arid valley of Sichuan Province. Chin. J. Soil Sci. 2018, 49, 105–111.

[56] Chen L, Li P, Yang Y. Dynamic patterns of nitrogen: Phosphorus ratios in forest soils of China under changing environment [J].Journal of Geophysical Research Biogeosciences, 2016.DOI:10. 1002/ 2016JG003352.

[57] Luo, Y., Field, C.B., Jackson, R.B., 2006. Does nitrogen constrain carbon cycling, or does carbon input stimulate nitrogen cycling? Ecology 87 (1), 3–4.

[58] Liu J , Gou X , Zhang F ,et al.Spatial patterns in the C:N:P stoichiometry in Qinghai spruce and the soil across the Qilian Mountains, China[J].CATENA, 196.DOI:10.1016/j.catena.2020.104814.