生物多样性

• • 上一篇    下一篇

养分富集和降水变化对内蒙古草甸草原生态系统生产力稳定性的影响

吕硕1, 柯玉广1*, 王洪强2, 李雅慧1, 林长存1*, 庾强1   

  1. 1. 北京林业大学草业与草原学院,北京100083 2. 北方干旱半干旱耕地高效利用全国重点实验室(中国农业科学院农业资源与农业区划研究所,北京 100081)
  • 收稿日期:2026-04-13 修回日期:2026-08-03 接受日期:2026-08-18
  • 通讯作者: 柯玉广
  • 基金资助:
    国家自然科学基金项目(W2511021); 北京林业大学科技创新计划项目(QNTD202505)

Effects of eutrophication and precipitation change on productivity stability of meadow steppe ecosystems in Inner Mongolia

Shuo Lü1, Yuguang Ke1*, Hongqiang Wang2, Yahui Li1, Changcun Lin1*, Qiang Yu1   

  1. 1 School of Grassland Science, Beijing Forestry University, Beijing 100083, China. 

    2 State Key Laboratory of Efficient Utilization of Arable Land in China (Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Beijing 100081, China)

  • Received:2026-04-13 Revised:2026-08-03 Accepted:2026-08-18
  • Contact: Yuguang Ke

摘要: 生态系统稳定性对于维持生态系统功能和服务至关重要。养分富集和降水变化是当前全球变化背景下影响草原生态系统稳定性的两大关键驱动因子,然而以往的研究主要关注单一驱动因素的影响,二者交互作用对生态系统稳定性的影响及其机制仍缺乏系统认识。本研究以呼伦贝尔草甸草原为研究对象,设置对照、养分添加(NPK)、增加降水(全年降水量增加50%,+50%W)、干旱(全年降水量减少50%,–50%W)、养分添加和增加降水(NPK + 50%W)以及养分添加和干旱(NPK – 50%W)6个处理,使用连续7年(2018–2024年)的数据,系统分析了养分富集和降水变化及其交互作用对群落地上净初级生产力(ANPP)时间稳定性的影响,并基于物种多样性、物种非同步性、优势种稳定性和非优势种稳定性探讨其潜在机制。结果表明,与对照相比,所有处理均显著降低了群落ANPP的时间稳定性,但各处理之间差异不显著。养分添加与增加降水和干旱之间存在显著正向交互作用,两者共同作用下,群落ANPP时间稳定性降低的程度与单一因子处理下的降低程度类似,并未表现出叠加。在机制层面,养分添加显著降低了平均物种丰富度、物种非同步性和非优势种稳定性;增加降水仅降低物种非同步性,干旱仅降低平均物种丰富度。降水变化与养分添加的显著交互作用表现为对平均物种丰富度和物种非同步性的正效应。此外,群落ANPP时间稳定性与平均物种丰富度、物种非同步性和非优势种稳定性均呈显著正相关关系,但与优势种稳定性无显著相关性。因此,养分富集与降水变化共同作用下,平均物种丰富度、物种非同步性和非优势种稳定性共同调控草甸草原生态系统稳定性,且增加降水和干旱与养分富集的交互作用主要由平均物种丰富度和物种非同步性共同驱动。本研究加深了对未来全球变化背景下草甸草原生态系统生产力稳定性响应及机制的理解,为草甸草原生态系统的保护与管理提供了科学依据。

关键词: 养分富集, 干旱, 降水增加, 生态系统功能, 时间稳定性, 生物多样性

Abstract

Aims: Ecosystem stability is crucial for maintaining ecosystem functioning and services. Nutrient enrichment and precipitation change are two major drivers affecting the stability of grassland ecosystems under global change. However, previous studies have primarily focused on the effects of individual drivers, while the impacts of their interactive effects and the underlying mechanisms remain poorly understood. 

Methods: We conducted a field experiment in the Hulunbuir meadow steppe with six treatments: ambient, nutrient addition (NPK), increased precipitation (50% increase in annual precipitation, +50% W), drought (50% reduction in annual precipitation,–50%W), nutrient addition plus increased precipitation (NPK + 50%W), and nutrient addition plus drought (NPK – 50%W). Using a 7-year dataset (2018–2024), we systematically evaluated the effects of eutrophication, precipitation change, and their interactions on the temporal stability of aboveground net primary productivity (ANPP). We further explored the underlying mechanisms by examining species diversity, species asynchrony, dominant species stability, and subordinate species stability. 

Results: The results showed that, compared with the ambient, all treatments significantly reduced the temporal stability of ANPP, with no significant differences among treatments. Significant positive interactions were detected between nutrient addition and both increased precipitation and drought, indicating that their combined effects on the temporal stability of ANPP were non-additive, and the magnitude of reduction was comparable to that under single-factor treatments. Mechanistically, nutrient addition significantly reduced average species richness, species asynchrony, and subordinate species stability; increased precipitation reduced only species asynchrony, whereas drought reduced only average species richness. Significant interactions between nutrient addition and precipitation change were reflected in positive effects on average species richness and species asynchrony. In addition, the temporal stability of ANPP was significantly positively correlated with average species richness, species asynchrony, and subordinate species stability, but was not significantly related to dominant species stability. 

Conclusion: In summary, average species richness, species asynchrony, and subordinate species stability jointly regulated ecosystem stability under the combined effects of nutrient enrichment and precipitation change, whereas the interactions between nutrient addition and precipitation change were primarily mediated by average species richness and species asynchrony. This study improves our understanding of ecosystem stability responses and underlying mechanisms under multiple global change drivers and provides a scientific basis for the conservation and management of meadow steppe ecosystems.

Key words: eutrophication, drought, increased precipitation, ecosystem function, temporal stability, biodiversity