[1] 张成霞, 南志标. 放牧对草地土壤理化特性影响的研究进展. 草业学报, 2010, 19(4): 204-211 [2] Chen XN, Cui BC, Gui DW, et al. Global temporal and spatial changes of vegetation in desert steppe ecosystems: Impacts of climate driving factors. Ecological Indicators, 2025, 172: 113333 [3] Wang XM, Geng X, Liu B, et al. Desert ecosystems in China: Past, present, and future. Earth-Science Reviews, 2022, 234: 104206 [4] 陈晓莹, 陈林, 李敏岚, 等. 荒漠草原黑沙蒿灌丛穿透雨空间分布特征及其对浅层土壤水分的影响. 应用生态学报, 2025, 36(12): 3749-3760 [5] 朱湾湾, 许艺馨, 余海龙, 等. 降水量与氮添加对荒漠草原生态系统碳交换的影响. 生态学报, 2021, 41(16): 6679-6691 [6] An H, Li GQ. Effects of grazing on carbon and nitrogen in plants and soils in a semiarid desert grassland, China. Journal of Arid Land, 2015, 7: 341-349 [7] 郭子华, 郝欢欢, 马洁, 等. 修复措施对中国退化草地土壤有机碳组分的影响. 应用生态学报, 2025, 36(11): 3327-3338 [8] Liu Z, Shen Y, Wang GH, et al. Moderate time grazing in the warm season maintained the diversity and complexity of soil microorganisms by regulating nutrient cycling and decomposition function. Functional Ecology, 2025, 39: 2772-2789 [9] 段成伟, 李希来, 马盼盼, 等. 人工修复措施对退化高寒草甸土壤养分及酶活性的影响. 西北农业学报, 2022, 31(4): 431-440 [10] Bhaduri D, Sihi D, Bhowmik A, et al. A review on effective soil health bio-indicators for ecosystem restoration and sustainability. Frontiers in Microbiology, 2022, 13: 938481 [11] 罗冬, 王明玖, 郑少龙, 等. 围封对荒漠草原土壤微生物数量及其酶活性的影响. 生态环境学报, 2016, 25(5): 760-767 [12] Zhang WB, Li J, Struik PC, et al. Recovery through proper grazing exclusion promotes the carbon cycle and increases carbon sequestration in semiarid steppe. Science of the Total Environment, 2023, 892: 164423 [13] Li MR, Wang LL, Li JJ, et al. Grazing exclusion had greater effects than nitrogen addition on soil and plant community in a desert steppe, Northwest of China. BMC Plant Biology, 2022, 22: 60 [14] Feng J, Sun ZK, Tang SM, et al. Effect of grazing on soil enzyme activities in grassland ecosystems: A meta-analysis. Grassland Science, 2025, 71: 97-105 [15] 李国旗, 赵盼盼, 邵文山, 等. 围封条件下荒漠草原两种植物群落土壤理化性状与酶活性的研究. 草业学报, 2019, 28(7): 49-59 [16] 王益涛. 围封下荒漠草原典型群落植物-土壤碳氮同位素及化学计量特征. 硕士论文. 银川: 宁夏大学, 2024 [17] 张博华. 放牧对荒漠草原不同植被微斑块土壤微生物及养分特征的影响. 硕士论文. 银川: 宁夏大学, 2023 [18] Wang LH, Li XW. Soil microbial community and their relationship with soil properties across various landscapes in the Mu Us Desert. Forests, 2023, 14: 2152 [19] 贾继宝, 代惠萍, 刘恒青, 等. 放牧强度对宁夏盐池荒漠草地土壤与植被恢复的影响. 生态学杂志, 2024, 43(7): 2066-2074 [20] 李成阳, 梁志辉, 李臻明, 等. 长江源区北麓河流域退化高寒草甸植物群落特征和土壤特性. 生态环境学报, 2024, 33(7): 1063-1071 [21] 周全来, 汪海洋, 刘志民, 等. 穿沙公路网分区治沙模式的原理、技术及效益. 应用生态学报, 2025, 36(8): 2465-2474 [22] 刘泽华, 陈林, 张雅琪, 等. 灌丛化对荒漠草原猪毛蒿群落物种生态位和种间联结性的影响. 草业学报, 2025, 34(10): 1-15 [23] Huston MA. Disturbance, productivity, and species diversity: Empiricism vs. logic in ecological theory. Ecology, 2014, 95: 2382-2396 [24] 何晴波, 赵凌平, 白欣, 等. 封育和放牧对典型草原地上植被的影响. 水土保持研究, 2017, 24(4): 247-251 [25] 朱新萍, 贾宏涛, 蒋平安, 等. 长期围栏封育对中天山草地植物群落特征及多样性的影响. 草业科学, 2012, 29(6): 989-992 [26] Xu YT, Cui K, Zhang XS, et al. Shifts in fungal communities drive soil profile nutrient cycling during grassland restoration. mBio, 2025, 16: e0283424 [27] Li SY, Zhang B, Li YN, et al. Long-term grazing exacerbates soil microbial carbon and phosphorus limitations in the desert steppe of Inner Mongolia: A study based on enzyme kinetics. Applied Soil Ecology, 2024, 194: 105192 [28] Hong JT, Xu X, Pang B, et al. Significant soil acidification caused by grazing exclusion across China’s grassland areas. Land Degradation and Development, 2021, 32: 535-545 [29] 姜勇, 徐柱文, 王汝振, 等. 长期施肥和增水对半干旱草地土壤性质和植物性状的影响. 应用生态学报, 2019, 30(7): 2470-2480 [30] 吴悦, 董乙强, 周时杰, 等. 封育对伊犁绢蒿荒漠土壤酶活性及其化学计量特征的影响. 草业科学, 2025, 42(8): 1945-1958 [31] 张蕊, 崔媛媛, 王悦骅, 等. 围封荒漠草原植物氮磷利用特征及其与土壤理化性质的关系. 草地学报, 2025, 33(10): 3330-3340 [32] 张瑞, 蔡汭佳, 王晶晶, 等. 氮添加对落叶松次生林根际与非根际土壤-微生物-胞外酶化学计量特征的影响. 应用生态学报, 2026, 37(2): 453-463 [33] 朱牛, 孙建, 石凝, 等. 短期围栏封育对高寒草甸植物群落及土壤理化性质的影响. 草地学报, 2023, 31(3): 834-843 [34] 李磊, 王岩, 胡姝娅, 等. 草甸草原土壤碳/氮矿化潜力及土壤微生物水分敏感性对极端干旱的响应. 应用生态学报, 2020, 31(3): 814-820 [35] Brooks MD, Szefto RC. Biological nitrogen fixation maintains carbon/nitrogen balance and photosynthesis at elevated CO2. Plant, Cell and Environment, 2024, 47: 2178-2191 [36] Salinas-Roco S, Morales-GonzÁlez A, Espinoza S, et al. N2 fixation, N transfer, and land equivalent ratio (LER) in grain legume-wheat intercropping: Impact of N supply and plant density. Plants, 2024, 13: 991 [37] Zhao SC, Li KJ, Zhou W, et al. Changes in soil microbial community, enzyme activities and organic matter fractions under long-term straw return in north-central China. Agriculture, Ecosystems and Environment, 2016, 216: 82-88 [38] Parker SS, Seabloom EW, Schimel JP. Grassland community composition drives small-scale spatial patterns in soil properties and processes. Geoderma, 2012, 170: 269-279 [39] 牛得草, 江世高, 秦燕, 等. 围封与放牧对土壤微生物和酶活性的影响. 草业科学, 2013, 30(4): 528-534 [40] 王益涛, 刘建康, 武志嘉, 等. 围封对荒漠草原典型植物群落特征及多样性的影响. 水土保持研究, 2025, 32(1): 121-130 [41] 乔文静, 戴银月, 张伟, 等. 黄土丘陵区撂荒恢复过程中植物群落组成与土壤养分及酶活性变化的关系. 环境科学, 2018, 39(12): 5687-5698 [42] Sardans J, Peñuelas J. Potassium: A neglected nutrient in global change. Global Ecology and Biogeography, 2015, 24: 261-275 [43] Lavres J, Alves FV, Mateus NS, et al. Thirsty for solutions: How potassium drives sugarcane’s varietal-specific strategies for drought tolerance. Plant Physiology and Biochemistry, 2025, 223: 109791 [44] Chen YX, Wei TX, Sha GL, et al. Soil enzyme activities of typical plant communities after vegetation restoration on the Loess Plateau, China. Applied Soil Ecology, 2022, 170: 104292 [45] 何文强, 王瑞霞, 田英, 等. 毛乌素沙地南缘柠条固沙林演替过程中草本植物多样性与群落稳定性动态变化及其驱动因素. 生态学报, 2025, 45(22): 11171-11183 |