[1] Chen, H., Zhu, Q., Peng, C.H., et al., 2013. The impacts of climate change and human activities on biogeochemical cycles on the Qinghai-Tibetan Plateau. Global Change Biol. 19, 2940-2955. [2] Chen, Q., Wang, S., Borer, E.T., et al., 2023. Multidimensional responses of grassland stability to eutrophication. Nat. Commun. 14, 6375. [3] Cutler, D.R., Edwards Jr, T.C., Beard, K.H., et al., 2007. Random forests for classification in ecology. Ecology 88, 2783-2792. [4] da Silveira Pontes, L., Maire, V., Schellberg, J., et al., 2015. Grass strategies and grassland community responses to environmental drivers: a review. Agron. Sustain. Dev. 35, 1297-1318. [5] De Keersmaecker, W., van Rooijen, N., Lhermitte, S., et al., 2016. Species-rich semi-natural grasslands have a higher resistance but a lower resilience than intensively managed agricultural grasslands in response to climate anomalies. J. Appl. Ecol. 53, 430-439. [6] Donohue, I., Hillebrand, H., Montoya, J.M., et al., 2016. Navigating the complexity of ecological stability. Ecol. Lett. 19, 1172-1185. [7] Donohue, I., Petchey, O.L., Montoya, J.M., et al., 2013. On the dimensionality of ecological stability. Ecol. Lett. 16, 421-429. [8] Ge, G., Shi, Z.J., Yang, X.H., et al., 2017. Analysis of precipitation extremes in the Qinghai-Tibetan Plateau, China: Spatio-temporal characteristics and topography effects. Atmosphere 8, 127. [9] Hallett, L.M., Stein, C., Suding, K.N., 2017. Functional diversity increases ecological stability in a grazed grassland. Oecologia 183, 831-840. [10] Hautier, Y., Tilman, D., Isbell, F., et al., 2015. Anthropogenic environmental changes affect ecosystem stability via biodiversity. Science 348, 336-340. [11] He, Y.L., Wang, J.S., Tian, D.S., et al., 2022. Long-term drought aggravates instability of alpine grassland productivity to extreme climatic event. Ecology 103, e3792. https://doi.org/10.1002/ecy.3792. [12] Hossain, M.L., Li, J., Hoffmann, S., et al., 2022. Biodiversity showed positive effects on resistance but mixed effects on resilience to climatic extremes in a long-term grassland experiment. Sci. Total Environ. 827, 154322. [13] IPCC., 2021. The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press. [14] Isbell, F., Craven, D., Connolly, J., et al., 2015. Biodiversity increases the resistance of ecosystem productivity to climate extremes. Nature 526, 574-577. [15] Kreyling, J., Dengler, J., Walter, J., et al., 2017. Species richness effects on grassland recovery from drought depend on community productivity in a multisite experiment. Ecol. Lett. 20, 1405-1413. [16] Lefcheck, J.S., 2016. PIECEWISESEM: Piecewise structural equation modelling in R for ecology, evolution, and systematics. Methods Ecol. Evol. 7, 573579. [17] Loreau, M., de Mazancourt, C., 2008. Species synchrony and its drivers: Neutral and nonneutral community dynamics in fluctuating environments. Am. Nat. 172, E48-E66. [18] Loreau, M., de Mazancourt, C., 2013. Biodiversity and ecosystem stability: A synthesis of underlying mechanisms. Ecol. Lett. 16, 106-115. [19] Luo, Y.Y., Yang, D.W., O’Connor, P., et al., 2022. Dynamic characteristics and synergistic effects of ecosystem services under climate change scenarios on the Qinghai-Tibet Plateau. Sci. Rep. 12, 2540. https://doi.org/10.1038/s41598-022-06350-0. [20] Ma, F.F., Wang, J.S., He, Y.L., et al., 2023. Nitrogen enrichment differentially regulates the response of ecosystem stability to extreme dry versus wet events. Sci. Total Environ. 887, 164152. [21] Ma, F.F., Yan, Y.J., Svenning, J., et al., 2024. Opposing effects of warming on the stability of above- and belowground productivity in facing an extreme drought event. Ecology 105, e4193. [22] Ma, Z.W., Li, L., Zhou, Q.P., et al., 2022a. Litter manipulation enhances plant community heterogeneity via distinct mechanisms: The role of distribution patterns of plant functional composition and niche breadth variability. J. Environ. Manage. 320, 115877. [23] Ma, Z.W., Wu, J., Li, L., et al., 2021. Litter-Induced reduction in ecosystem multifunctionality is mediated by plant diversity and cover in an alpine meadow. Front. Plant Sci. 12, 773804. [24] Ma, Z.W., Zeng, Y.F., Wu, J., et al., 2022b. Plant litter influences the temporal stability of plant community biomass in an alpine meadow by altering the stability and asynchrony of plant functional groups. Funct. Ecol. 36, 148-158. [25] Ma, Z.Y., Liu, H.Y., Mi, Z.R., et al., 2017. Climate warming reduces the temporal stability of plant community biomass production. Nat. Commun. 8, 15378. [26] Pennekamp, F., Pontarp, M., Tabi, A., et al., 2018. Biodiversity increases and decreases ecosystem stability. Nature 563, 109-112. [27] Polazzo, F., Rico, A., 2021. Effects of multiple stressors on the dimensionality of ecological stability. Ecol. Lett. 24, 1594-1606. [28] R Core Team., 2021. R: A Language and Environment for Statistical Computing. R Foundation for Statistical Computing. https://www.R-project.org/. [29] Shen, Y., Chen, W.Q., Yang, G.W., et al., 2016. Can litter addition mediate plant productivity responses to increased precipitation and nitrogen deposition in a typical steppe? Ecol. Res. 31, 579-587. [30] Shipley, B., 2013. The AIC model selection method applied to path analytic models compared using a d-separation test. Ecology 94, 560-564. [31] Smith, B., Wilson, J.B., 1996. A consumer's guide to evenness indices. Oikos 76, 70-82. [32] Vepraskas, M.J., Berkowitz, J.F. Arellano, C., 2019. Determining normal precipitation ranges for hydric soil assessments. Soil Sci. Soc. Am. J. 83, 503-510. [33] Wang, C.T., Long, R.J., Wang, Q.L., et al., 2010. Fertilization and litter effects on the functional group biomass, species diversity of plants, microbial biomass, and enzyme activity of two alpine meadow communities. Plant Soil 331, 377-389. [34] Wang, Y.X., Wu, Z., Wang, Z.F., et al., 2022. Ecosystem coupling and ecosystem multifunctionality may evaluate the plant succession induced by grazing in alpine meadow. Front. Plant Sci. 13, 839920. [35] Wilcox, K.R., Koerner, S.E., Hoover, D.L., et al., 2020. Rapid recovery of ecosystem function following extreme drought in a south African savanna grassland. Ecology 101, e02983. [36] Xu, Q.N., Yang, X., Song, J., et al., 2022. Nitrogen enrichment alters multiple dimensions of grassland functional stability via changing compositional stability. Ecol. Lett. 25, 2713-2725. [37] Xu, ZW., Ren, H.Y., Cai, J.P., et al., 2014. Effects of experimentally-enhanced precipitation and nitrogen on resistance, recovery and resilience of a semi-arid grassland after drought. Oecologia 176, 1187-1197. [38] Yan, Y.J., Ma, F.F., Wang, J.S., et al., 2023. Warming stabilizes alpine ecosystem facing extreme rainfall events by changing plant species composition. J. Ecol. 111, 2064-2076. [39] You, Q.L., Cai, Z.Y., Pepin, N., et al., 2021. Warming amplification over the Arctic Pole and Third Pole: Trends, mechanisms and consequences. Earth-Sci. Rev. 217, 103625. [40] Yu, H.Y., Ma, Q.H., Liu, X.D., et al., 2021. Resistance, recovery, and resilience of desert steppe to precipitation alterations with nitrogen deposition. J. Clean. Prod. 317, 128434. [41] Zhang, H.J., Wang, W., 2023. Grassland degradation alters the effect of nitrogen enrichment on the multidimensional stability of plant community productivity. J. Appl. Ecol. 60, 2437-2448. [42] Zhang, W.P., Fornara, D., Yang, H., et al., 2023. Plant litter strengthens positive biodiversity-ecosystem functioning relationships over time. Trends Ecol. Evol. 38, 473-484. [43] Zou, J.R., Luo, C.Y., Xu, X.L., et al., 2016. Relationship of plant diversity with litter and soil available nitrogen in an alpine meadow under a 9-year grazing exclusion. Ecol. Res. 31, 841-851. |