生物多样性

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本地和入侵植物功能性状海拔格局及其对气候因素的响应

李梦晴1,2, 何轩宇1,2, 门丽娜2, 张志伟2*, 赵彩云1*   

  1. 1. 中国环境科学研究院生态研究所, 北京 100012; 2. 山西农业大学林学院, 山西晋中 030801
  • 收稿日期:2026-04-07 修回日期:2026-04-30 接受日期:2026-05-17
  • 通讯作者: 赵彩云

Elevational patterns of functional traits in native and invasive plants and their responses to climatic factors

Mengqing Li1,2, Xuanyu He1,2, Lina Men2, Zhiwei Zhang2*, Caiyun Zhao1*   

  1. 1 Institue of Ecology, Chinese Research Academy of Environmental Sciences, Beijing 100012, China 

    2 Shanxi Agriculture University, Jinzhong, Shanxi 030801, China

  • Received:2026-04-07 Revised:2026-04-30 Accepted:2026-05-17
  • Contact: Caiyun Zhao

摘要: 植物功能性状反映了不同植物在不同环境条件下的生存策略和资源分配方式, 其海拔格局对于理解植物对山地环境的适应具有重要意义。目前本地和入侵植物功能性状对不同海拔的响应对比研究甚少。本研究基于海南霸王岭国家级自然保护区不同海拔梯度(250–1,050 m, 间隔100 m)的49个1 m × 1 m的草本样方, 对比了本地和外来入侵植物功能性状的海拔格局, 并分析了两者对气候因素的响应差异。结果表明, 整体海拔上, 入侵植物的株高(P < 0.001)、叶片宽度(P < 0.001)和叶片氮含量(P < 0.05)显著高于本地植物, 但叶片长度(P = 0.003)和叶片干重(P = 0.005)显著低于本地植物。海拔区间上, 低海拔段(200–500 m)入侵植物的株高(P < 0.001)显著高于本地植物; 中海拔段(500–800 m)入侵植物的叶片宽度(P < 0.001)和株高(P = 0.012)显著高于本地植物, 而叶片长度(P < 0.05)显著低于本地植物; 高海拔段(800–1,100 m)入侵植物的叶片宽度(P < 0.05)和叶片氮含量(P < 0.05)显著高于本地植物, 而叶片长度(P < 0.05)、叶片干重(P = 0.006)和叶片鲜重(P < 0.05)显著低于本地植物, 其余性状差异不显著。入侵植物的株高(P < 0.001)、叶片长度(P < 0.001)、叶面积(P = 0.021)和叶片干重(P = 0.037)与年均温呈显著正相关, 与年均降水量呈显著负相关, 而叶片氮含量呈现相反模式; 本地植物仅叶片宽度与气候因素存在显著相关性。本研究表明, 入侵植物在低海拔表现为资源获取型策略(高株高、大叶片宽度、高叶片氮含量), 中海拔性状优势进一步扩大(增加叶绿素含量和叶片湿度), 在高海拔通过物种更替筛选出高叶片氮含量的耐寒物种。方差分解结果显示, 这一生态策略的转变主要由物种周转驱动, 即不同海拔筛选出具有不同功能性状组合的物种。本地植物则表现为更保守的功能性状策略, 其功能性状海拔分异同样以物种周转为主导。建议将低、中海拔区域作为入侵监测与防控重点, 同时关注高海拔区域入侵植物通过物种更替维持竞争力的潜在风险。

关键词: 植物功能性状, 本地植物, 入侵植物, 海拔格局, 气候因素

Abstract

Aims: Plant functional traits reflect species’ survival strategies and patterns of resource allocation under varying environmental conditions. Understanding the elevational patterns of functional traits is crucial for elucidating how plants adapt to mountainous environments. However, comparative studies examining how the functional traits of native and invasive plants respond to different elevations remain limited. 

Methods: This study examined the elevational patterns of functional traits of native and invasive herbaceous plants and their climatic drives, based on 49 plots (1 m × 1 m) of herbaceous sampled along a 250–1,050 m elevational gradient at 100 m intervals in the Bawangling National Nature Reserve, Hainan. 

Results: The results showed that across the entire elevation range, invasive plant communities exhibited significantly greater plant height and leaf width than native communities (P < 0.001), while native communities had significantly higher leaf length (P = 0.003) and leaf dry weight (P = 0.005). At low elevations (200–500 m), invasive plants were taller than native (P < 0.001). At middle elevations (500–800 m), invasive plants exhibited greater plant height (P = 0.012) and leaf width (P < 0.05) compared to native plants, while their leaf length was significantly lower (P < 0.05). At high elevations (800–1,100 m), invasive plants showed significantly higher plant height, leaf width and leaf nitrogen content, but lower leaf length and leaf dry weight than natives (P < 0.05). No significant differences in other traits. Invasive plants showed a significant positive correlation between plant height (P < 0.001), leaf length (P < 0.001), leaf area (P = 0.021) and leaf dry weight (P = 0.037) with mean annual temperature, and negatively correlated with precipitation. In contrast, leaf nitrogen content exhibited an opposite trend. Native plants, however, only showed significant correlations between leaf width and climatic factors. 

Conclusion: This study suggests that invasive plants adopt a “resource-acquisitive” strategy at low elevations (characterized by greater height, larger leaf width, and higher leaf nitrogen content), further expanding their trait advantages at mid-elevations (increasing chlorophyll content and leaf moisture). At high elevations, they select for cold-tolerant species with high leaf nitrogen through species turnover. Variance partitioning results revealed that this ecological strategy shift is primarily driven by species turnover, which filters out species with varying functional trait combinations at different elevations. In contrast, native plants exhibit a more conservative functional trait strategies, with their elevational variation in functional traits also primarily dominated by species turnover. Results recommended to prioritize invasive species monitoring and control at low and mid-elevation areas, while also being aware of the potential risk of invasive plants maintaining their competitiveness at high elevations through species turnover.

Key words: plant functional traits, native plants, invasive plants, elevational pattern, climatic factors