[1] 王毅, 孙建, 叶冲冲, 等. 气候因子通过土壤微生物生物量氮促进青藏高原高寒草地地上生态系统功能. 植物生态学报, 2021, 45(5): 434-443 [2] 杨元合. 全球变化背景下的高寒生态过程. 植物生态学报, 2018, 42(1): 1-5 [3] Wang JS, Zhang XZ, Chen BX, et al. Current status, causes, and restoration models of alpine grassland degradation in Northern Tibet. Journal of Resources and Eco-logy, 2013, 4: 43-49 [4] 魏卫东, 刘育红, 马辉, 等. 三江源区退化高寒草甸浅层土壤冻融作用特征. 生态与农村环境学报, 2019, 35(3): 352-359 [5] Li YJ, Qu D, Gao YJ, et al. Vegetation and soil phosphorus characteristics and their relationships with the biomass of degraded alpine meadow phases in eastern Qilian Mountains. Acta Ecologica Sinica, 2023, 43: 7381-7389 [6] Wei JJ, Zhou HK, Shao XQ, et al. Effects of short- and long-term plant functional group loss on alpine meadow community structure and soil nutrients. Ecology and Evolution, 2024, 14: e10919 [7] Peng CJ, He YC, Li YK, et al. Dominant plant functional groups regulate soil respiration response to warming in three types of alpine grassland on the Qinghai-Tibet Plateau. Ecological Processes, 2025, 14: 36 [8] Zeng P, Zuo HZ, Sun QJ, et al. Active restoration of degraded alpine grassland weakens mineral-associated soil organic carbon retention. Journal of Applied Eco-logy, 2025, 62: 1282-1295 [9] Li J, Wang Q, Zhu BL, et al. Influence of plateau pika disturbance on soil organic carbon in Zoige alpine grasslands: Based on the role of soil aggregate. Journal of Mountain Science, 2025, 22: 2555-2573 [10] 郭斌, 谢志军, 王国栋, 等. 青藏高原不同退化程度高寒草甸土壤理化性状典型特征. 草业科学, 2025, 42(7): 1653-1662 [11] 周丽, 张德罡, 贠旭江, 等. 退化高寒草甸植被与土壤特征. 草业科学, 2016, 33(11): 2196-2201 [12] 林丽, 兰玉婷, 李本措, 等. 高寒嵩草草甸稳态特征及退化演替过程. 生态学报, 2024, 44(22): 10178-10188 [13] 许振伟. 黄河三角洲滨海湿地生态系统多功能性的生物与非生物驱动机制. 博士论文. 济南: 山东大学, 2023 [14] 周春丽, 李以康, 曹广民, 等. 碳氮稳定同位素技术在青藏高原高寒草甸生态系统研究中的应用: 进展与展望. 应用生态学报, 2020, 31(10): 3568-3578 [15] 全小龙, 段中华, 乔有明, 等. 不同高寒草甸土壤碳氮稳定同位素和密度的差异. 草业学报, 2016, 25(12): 27-34 [16] 李雪双. 环青海湖区植物稳定碳氮同位素与重金属空间分布规律及影响因素研究. 硕士论文. 山东烟台: 鲁东大学, 2018 [17] 王海燕. 模拟氮沉降对尕海湿地土壤特性和甲烷排放的影响. 博士论文. 兰州: 甘肃农业大学, 2023 [18] 李成一, 李鑫慧, 柴瑜, 等. 退化斑块恢复演替对高寒草甸植被和土壤特征的影响. 草地学报, 2025, 33(10): 3307-3317 [19] 朱国栋, 郭娜, 吕广一, 等. 围封对内蒙古荒漠草原土壤理化性质及稳定碳氮同位素的影响. 土壤, 2020, 52(4): 840-845 [20] Gurmesa GA, de Vries W, Zhu W, et al. Limitations and strengths of indicators for evaluating the nitrogen status of forest ecosystems. Environmental Reviews, 2025, 33: 1-33 [21] 李文莲. 玛沁县天然草地基本特征分析. 养殖与饲料, 2012(5): 32-33 [22] 国家标准管理委员会. 高寒嵩草草甸退化状态评估(DB63/T 1414—2015). (2015-09-24) [2025-09-01]. https://std.samr.gov.cn/db/search/stdDBDetailed?id=91D99E4D20612E24E05397BE0A0A3A10 [23] 刘光崧. 土壤理化分析与剖面描述. 北京: 中国标准出版社, 1996: 9, 24 [24] Zhang L, Pang R, Xu XL, et al. Three Tibetan grassland plant species tend to partition niches with limited plasticity in nitrogen use. Plant and Soil, 2019, 441: 601-611 [25] 鲍士旦. 土壤农化分析. 北京: 中国农业出版社, 2002: 39-49 [26] Schimel JP, Bennett JN, Bennett JN. Nitrogen mineralization: Challenges of a changing paradigm. Ecology, 2004, 85: 591-602 [27] Kuypers M, Marchant H, Kartal B. The microbial nitrogen-cycling network. Nature Reviews Microbiology, 2018, 16: 263-276 [28] 马丽. 红原高寒沙化草地土壤特征及其与地形因子的关系研究. 博士论文. 四川绵阳: 西南科技大学, 2021 [29] 桑思月, 杨沂杰, 赵京东, 等. 围封对辽西北退化草地土壤有机碳含量的影响. 生态学杂志, 2025, 44(3): 884-891 [30] 房凯, 王迎新, 黄建辉, 等. 内蒙古典型草原不同退化阶段植被恢复的养分限制因子解析. 植物生态学报, 2025, 49(1): 7-18 [31] 王小赟, 肖元明, 王雯莹, 等. 植物群落和土壤特征对青海湖流域高寒草原退化梯度的响应. (2025-07-10)[2025-09-01]. 生态学杂志. https://link.cnki.net/urlid/21.1148.Q.20250709.1850.020 [32] 段俊光, 房凯, 褚建民, 等. 退化程度对典型草原物种多样性和土壤养分关系的影响. 草地学报, 2025, 33(9): 2890-2899 [33] Templer PH, Arthur MA, Lovett GM, et al. Plant and soil natural abundance δ15N: Indicators of relative rates of nitrogen cycling in temperate forest ecosystems. Oecologia, 2007, 153: 399-400 [34] 王子钰, 徐婷婷, 张隆安, 等. 不同林龄中间锦鸡儿各器官碳氮稳定同位素组成. 应用生态学报, 2025, 36(7): 1971-1979 [35] Han X, Li YH, Du XF, et al. Effect of grassland degradation on soil quality and soil biotic community in a semi-arid temperate steppe. Ecological Processes, 2020, 9: 63 [36] 马源, 李林芝, 张德罡, 等. 高寒草甸根际土壤化学计量特征对草地退化的响应. 应用生态学报, 2019, 30(9): 3039-3048 [37] Ratajczak Z, Carpenter SR, Ives AR, et al. Abrupt change in ecological systems: Inference and diagnosis. Trends in Ecology & Evolution, 2018, 33: 513-526 [38] 桑周卓玛. 不同退化程度高寒草甸生物量和土壤理化性质分析. 青海草业, 2024, 33(3): 7-11 [39] Hobbie EA, Ouimette AP. Controls of nitrogen isotope patterns in soil profiles. Biogeochemistry, 2009, 95: 355-371 [40] 妥万花, 刘泽华, 张润琳, 等. 高寒草甸草毡层在青藏高原草地退化中的作用机制. 安徽农学通报, 2025, 31(7): 43-47 |