Biodiv Sci

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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

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