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The combination of high leaf hydraulic safety and water use efficiency allows alpine shrubs to adapt to high‐altitude habitats

作者:Guang‐Qian Yao, Shihua Qi, Yan‐Ru Li, Yu‐Na Duan, Chao Jiang, Zheng‐Fei Nie, Xudong Liu, Md. Mahadi Hasan, Danghui Xu, Wenmao Jing, Scott A. M. McAdam, Xiang‐Wen Fang · 发表于:Functional Ecology · 年份:2024 · DOI:10.1111/1365-2435.14660 · 被引用次数:5 · 研究领域:Plant Water Relations and Carbon Dynamics、Tree-ring climate responses、Plant responses to water stress

Abstract Leaf hydraulic traits are considered the key determinants of gas exchange and therefore affect species distributions along environmental gradients, but the patterns of leaf hydraulic traits and their associations with gas exchange across altitudinal gradients remain largely unknown. Here, we measured leaf hydraulic traits, gas exchange, leaf anatomical traits and plant size traits in two dominant alpine shrubs ( Caragana jubata and Salix gilashanica ) across an altitudinal gradient from 3100 to 3700 m. The findings indicated that with increasing altitude, both shrub species exhibited an increase in leaf hydraulic safety (more negative K leaf P 50 ), a decrease in leaf hydraulic efficiency ( K leaf‐max ) and an increase in intrinsic water use efficiency (WUE i ), thus allowing them to adapt to higher altitude habitats. The more negative K leaf P 50 was associated with a greater ratio of major to minor vein density (VLA maj /VLA min ), the lower K leaf‐max was associated with a lower minor vein density (VLA min ) and greater increase in WUEi arose from the small decrease in the photosynthetic rate relative to the stomatal conductance. However, C. jubata was consistent with the ‘hydraulic safety strategy’ with a great decrease in K leaf P 50 , a small decrease in K leaf‐max and a small increase in WUE i along with decreasing plant height and leaf area with increasing altitude. Whereas S. gilashanica was consistent with the ‘photosynthetic efficiency strategy’ with a sma...