
Chinese Journal of Applied Ecology ›› 2026, Vol. 37 ›› Issue (8): 2537-2546.doi: 10.13287/j.1001-9332.202608.006
Previous Articles Next Articles
HU Xiaodie1,2, WANG Xiaohong1,2*, GAO Hong1,2, ZHANG Wei1,2, HUANG Bingbin1,2, YAO Xiaodong1,2, CHEN Guangshui1,2
Received:2026-04-03
Revised:2026-06-07
Online:2026-08-18
Published:2027-02-18
HU Xiaodie, WANG Xiaohong, GAO Hong, ZHANG Wei, HUANG Bingbin, YAO Xiaodong, CHEN Guangshui. Effects of long-term nitrogen deposition on soil microbial respiration and metabolic quotient in subtropical natural forests[J]. Chinese Journal of Applied Ecology, 2026, 37(8): 2537-2546.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cjae.net/EN/10.13287/j.1001-9332.202608.006
| [1] Pan YD, Birdsey RA, Phillips OL, et al. The enduring world forest carbon sink. Nature, 2024, 631: 563-569 [2] Zhu JX, Jia YL, Yu GR, et al. Changing patterns of global nitrogen deposition driven by socio-economic development. Nature Communications, 2025, 16: 46 [3] Zhao RD, Liao C, Wu Y, et al. Nitrogen addition and precipitation reduction regulate soil organic carbon sto-rage with contrasting mechanisms in subtropical forests. Plant and Soil, 2025, 516: 241-255 [4] Davidson EA, Janssens IA. Temperature sensitivity of soil carbon decomposition and feedbacks to climate change. Nature, 2006, 440: 165-173 [5] Jiang MK, Medlyn BE, Drake JE, et al. The fate of carbon in a mature forest under carbon dioxide enrichment. Nature, 2020, 580: 227-231 [6] 余景松, 付若仙, 俞元春, 等. 氮沉降对北亚热带麻栎林土壤呼吸及其温湿度敏感性的影响. 生态学杂志, 2021, 40(4): 1029-1037 [7] Zhou LY, Zhou XH, Zhang BC, et al. Different responses of soil respiration and its components to nitrogen addition among biomes: A meta-analysis. Global Change Biology, 2014, 20: 2332-2343 [8] 李仁洪, 涂利华, 胡庭兴, 等. 模拟氮沉降对华西雨屏区慈竹林土壤呼吸的影响. 应用生态学报, 2010, 21(7): 1649-1655 [9] Waldrop MP, Zak DR, Sinsabaugh RL. Microbial community response to nitrogen deposition in northern forest ecosystems. Soil Biology and Biochemistry, 2004, 36: 1443-1451 [10] Mao QG, Lu XK, Zhou KJ, et al. Effects of long-term nitrogen and phosphorus additions on soil acidification in an N-rich tropical forest. Geoderma, 2017, 285: 57-63 [11] Schimel JP, Bennett J. Nitrogen mineralization: Cha-llenges of a changing paradigm. Ecology, 2004, 85: 591-602 [12] Schleuss PM, Widdig M, Biederman LA, et al. Microbial substrate stoichiometry governs nutrient effects on nitrogen cycling in grassland soils. Soil Biology and Biochemistry, 2021, 155: 108168 [13] Mooshammer M, Wanek W, Zechmeister-Boltenstern S, et al. Stoichiometric imbalances between terrestrial decomposer communities and their resources: Mechanisms and implications of microbial adaptations to their resources. Frontiers in Microbiology, 2014, 5: 22 [14] Hartman WH, Richardson CJ. Differential nutrient limitation of soil microbial biomass and metabolic quotients (qCO2): Is there a biological stoichiometry of soil microbes? PLoS One, 2013, 8(3): e57127 [15] Cui YX, Moorhead DL, Wang XX, et al. Decreasing microbial phosphorus limitation increases soil carbon release. Geoderma, 2022, 419: 115868 [16] 高红, 王小红, 吴东梅, 等. 碳氮有效性对亚热带人工林土壤微生物呼吸及其代谢响应的影响. 应用生态学报, 2024, 35(8): 2025-2034 [17] 王翠娟, 刘小飞, 杨柳明, 等. 中亚热带米槠人工林土壤微生物残体碳对凋落物和根系碳输入的响应. 应用生态学报, 2024, 35(1): 177-185 [18] Wang XH, Lu JY, Zhang XW, et al. Contrasting microbial mechanisms of soil priming effects induced by crop residues depend on nitrogen availability and temperature. Applied Soil Ecology, 2021, 168: 104186 [19] 纪娇娇, 郑蔚, 杨智杰, 等. 亚热带森林转换对土壤微生物呼吸及其熵值的影响. 生态学报, 2020, 40(3): 800-807 [20] Wang XH, Wu DM, Li S, et al. Effects of C:N imbalance on soil microbial physiology in subtropical tree plantations associated with ectomycorrhizal and arbuscular mycorrhizal fungi. Geoderma, 2022, 422: 115932 [21] Feng J, Zeng XM, Zhang QG, et al. Soil microbial trait-based strategies drive metabolic efficiency along an altitude gradient. ISME Communications, 2021, 1: 71 [22] Wang Q, He NP, Yu GR, et al. Soil microbial respiration rate and temperature sensitivity along a north-south forest transect in Eastern China: Patterns and influencing factors. Journal of Geophysical Research: Biogeosciences, 2016, 121: 399-410 [23] Geyer K, Schnecker J, Grandy AS, et al. Assessing microbial residues in soil as a potential carbon sink and moderator of carbon use efficiency. Biogeochemistry, 2020, 151: 237-249 [24] Liang GP, Reed SC, Stark JM, et al. Unraveling mecha-nisms underlying effects of wetting-drying cycles on soil respiration in a dryland. Biogeochemistry, 2023, 166: 23-37 [25] Liu Y, Men MX, Peng ZP, et al. Spatially explicit estimate of nitrogen effects on soil respiration across the globe. Global Change Biology, 2023, 29: 3591-3600 [26] Liu WX, Liu LL, Yang X, et al. Long-term nitrogen input alters plant and soil bacterial, but not fungal beta diversity in a semiarid grassland. Global Change Bio-logy, 2021, 27: 3939-3950 [27] Zheng MH, Zhang T, Luo YQ, et al. Temporal patterns of soil carbon emission in tropical forests under long-term nitrogen deposition. Nature Geoscience, 2022, 15: 1002-1010 [28] Ning QS, Hättenschwiler S, Lü XT, et al. Carbon limitation overrides acidification in mediating soil microbial activity to nitrogen enrichment in a temperate grassland. Global Change Biology, 2021, 27: 5976-5988 [29] Zhou JC, Liu XF, Xie JS, et al. Nitrogen addition affects soil respiration primarily through changes in microbial community structure and biomass in a subtropical natural forest. Forests, 2019, 10: 435 [30] Ramirez KS, Craine JM, Fierer N. Nitrogen fertilization inhibits soil microbial respiration regardless of the form of nitrogen applied. Soil Biology and Biochemistry, 2010, 42: 2336-2338 [31] Chen J, Luo YQ, Li JW, et al. Costimulation of soil glycosidase activity and soil respiration by nitrogen addition. Global Change Biology, 2017, 23: 1328-1337 [32] Soares M, Rousk J. Microbial growth and carbon use efficiency in soil: Links to fungal-bacterial dominance, SOC-quality and stoichiometry. Soil Biology and Biochemistry, 2019, 131: 195-205 [33] Wang C, Lu XK, Mori T, et al. Responses of soil microbial community to continuous experimental nitrogen additions for 13 years in a nitrogen-rich tropical forest. Soil Biology and Biochemistry, 2018, 121: 103-112 [34] Pinzari F, Maggi O, Lunghini D, et al. A simple method for measuring fungal metabolic quotient and comparing carbon use efficiency of different isolates: Application to Mediterranean leaf litter fungi. Plant Biosystems, 2017, 151: 371-376 [35] Zechmeister-Boltenstern S, Michel K, Pfeffer M. Soil microbial community structure in European forests in relation to forest type and atmospheric nitrogen deposition. Plant and Soil, 2011, 343: 37-50 [36] Liu HH, Gao XP, Ren TT, et al. Nitrogen addition induces microbial phosphorus limitations in bulk soil but not in rhizospheric soil: A global analysis. Soil and Tillage Research, 2025, 252: 106609 [37] Zhang MM, Lu Y, Jin GZ, et al. Bacterial communities in litter are more sensitive to high nitrogen addition than fungal communities in a Korean pine (Pinus koraiensis) plantation. Journal of Forestry Research, 2025, 37: 23 [38] 徐悦悦, 王楹鑫, 马向成, 等. 补灌对旱作集雨下麦田微生物呼吸与熵值的影响. 农业机械学报, 2023, 54(2): 321-329 [39] 李阳, 徐小惠, 孙伟, 等. 不同形态和水平的氮添加对内蒙古草甸草原土壤净氮矿化潜力的影响. 植物生态学报, 2019, 43(2): 174-184 [40] Spohn M, Chodak M. Microbial respiration per unit biomass increases with carbon-to-nutrient ratios in forest soils. Soil Biology and Biochemistry, 2015, 81: 128-133 [41] Widdig M, Schleuss PM, Biederman LA, et al. Microbial carbon use efficiency in grassland soils subjected to nitrogen and phosphorus additions. Soil Biology and Biochemistry, 2020, 146: 107815 [42] Poosathit R, Kunlanit B, Rasche F, et al. Different quality classes of decomposing plant residues influence dissolved organic matter stoichiometry which results in different soil microbial processing. Soil Systems, 2024, 8: 28 [43] Enggrob KL, Larsen T, Peixoto L, et al. Gram-positive bacteria control the rapid anabolism of protein-sized soil organic nitrogen compounds questioning the present paradigm. Scientific Reports, 2020, 10: 15840 [44] Yang X, Thornton PE, Ricciuto DM, et al. The role of phosphorus dynamics in tropical forests: A modeling study using CLM-CNP. Biogeosciences, 2014, 11: 1667-1681 [45] Ma XM, Zhou Z, Chen J, et al. Long-term nitrogen and phosphorus fertilization reveals that phosphorus limitation shapes the microbial community composition and functions in tropical montane forest soil. Science of the Total Environment, 2023, 854: 158709 |
| [1] | LIN Yudie, CHEN Zhijie, WANG Shizhe, XU Minhui, JIANG Ziyi, SHI Xiuzhen, SU Lei, WANG Jianqing. Soil extracellular enzyme activities and stoichiometric characteristics in a warm-temperate-subtropical mixed coniferous and broad-leaved forest under nitrogen addition and drought conditions [J]. Chinese Journal of Applied Ecology, 2026, 37(8): 2491-2498. |
| [2] | YANG Yingying, YANG Tianyu, GUO Shaohua, LIU Fangyu, CAO Bing, YANG Junlong, XU Xuelei. Aboveground-belowground stoichiometric characteristics and allometric relationships across different vegetation types in Luo Mountain, Ningxia, China [J]. Chinese Journal of Applied Ecology, 2026, 37(8): 2509-2518. |
| [3] | LIU Jinyong, XU Yu-xing, MING Angang, WANG Zhichao, HUANG Runxia, ZHU Wankuan, DU Apeng, ZHU Guangyu. Effects of establishing mixed Eucalyptus plantations on soil phosphorus fractions [J]. Chinese Journal of Applied Ecology, 2026, 37(8): 2519-2527. |
| [4] | LYU Peng, LIU Jiankang, ZHANG Jie, SHI Na, LAN Huiqin, MENG Juanjuan, GAO Junliang, CAO Gong-xiang. Effects of nebkhas succession on the stoichiometry in organs of Nitraria tangutorum and soils [J]. Chinese Journal of Applied Ecology, 2026, 37(8): 2528-2536. |
| [5] | SHI Na, LIU Jiankang, ZHANG Jie, LYU Peng, ZHANG Chenghui, ZHANG Bohua, LAN Huiqin, WANG Yitao. Effects of enclosure on soil physicochemical properties and enzyme activities of typical plant communities in desert steppe of Ningxia [J]. Chinese Journal of Applied Ecology, 2026, 37(6): 1851-1860. |
| [6] | SHEN Xinyi, QIAO Yu, ZHAO Yunge, ZHANG Junyu, YU Shunyao, JING Haimeng, LI Yichun. Effects of soil microorganisms on growth and reproduction of Didymodon vinealis [J]. Chinese Journal of Applied Ecology, 2026, 37(6): 1907-1914. |
| [7] | XU Yijing, SUN Xuan, CHEN Yong, ZHENG Xuli, ZHOU Yan, MA Xiaomin, LIANG Chenfei, QIN Hua, CHEN Junhui. Effects of biochar derived from different feedstocks on soil microbial nutrient limitation in a Phyllostachys edulis forest. [J]. Chinese Journal of Applied Ecology, 2026, 37(5): 1477-1487. |
| [8] | YANG Yelei, WEN Hairui, YANG Yuchun, JIAO Chunjing, MA Chang, WANG Fang, WANG Jun, LIU Yue. Effects of thinning on soil extracellular enzyme activities and their stoichiometric ratios in Pinus koraiensis plantations [J]. Chinese Journal of Applied Ecology, 2026, 37(2): 409-416. |
| [9] | LI Jing, ZHOU Yongwei, SHEN Yafei, ZENG Lixiong, LIU Changfu, CHENG Ruimei, XIAO Wenfa. Soil regulatory effects on the decomposition of different litter components in Pinus massoniana plantation under nitrogen and phosphorus additions [J]. Chinese Journal of Applied Ecology, 2026, 37(2): 441-452. |
| [10] | ZHANG Rui, CAI Ruijia, WANG Jingjing, WANG Qinggui, WANG Chuankuan, QUAN Xiankui. Effects of nitrogen addition on soil-microbe-extracellular enzyme stoichiometric characteristics in rhizosphere and bulk soil of Larix gmelinii secondary forest [J]. Chinese Journal of Applied Ecology, 2026, 37(2): 453-463. |
| [11] | ZHAO Shuaiming, WANG Rui, LI Chenghao, LIU Jinhua, MENG Yaxin, SU Haiyao, XU Xuehua. Effects of precipitation on soil microbial carbon, nitrogen, phosphorus nutrient limitation characteristics in rhizosphere of Pinus sylvestris var. mongolica plantations [J]. Chinese Journal of Applied Ecology, 2026, 37(1): 43-51. |
| [12] | ZHU Jingling, LYU Yang, HUANG Hao, LIU Xinyu, WANG Yixiang. Effects of strip transformations of abandoned Phyllostachys edulis forests on soil carbon and nitrogen contents, and soil enzyme activities [J]. Chinese Journal of Applied Ecology, 2025, 36(9): 2753-2761. |
| [13] | LI Haowen, LIANG Yongxin, HUANG Yingmei, LIANG Chunmei, ZHANG Juntao, LIU Kexing. Effects of biochar on soil properties and bacterial community in forest of red soil region [J]. Chinese Journal of Applied Ecology, 2025, 36(9): 2771-2781. |
| [14] | ZENG Zhen, YU Lelin, ZHANG Xinhou, MAO Rong. Effect of nitrogen and phosphorus addition on plant community in a typical peatland of the Greater Khingan Mountains, China [J]. Chinese Journal of Applied Ecology, 2025, 36(8): 2353-2360. |
| [15] | LI Linghui, LIU Yijun, WANG Yimeng, WANG Ming. Change of soil labile organic carbon fractions and enzyme activities during peatland restoration in Changbai Mountains, Northeast China [J]. Chinese Journal of Applied Ecology, 2025, 36(8): 2361-2369. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||