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Responses of Woody Plant Functional Traits to Nitrogen Addition: A Meta-Analysis of Leaf Economics Gas Exchange and Hydraulic Traits

机译:木本植物功能性状对氮添加的响应:叶片经济气体交换和水力性状的荟萃分析

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摘要

Atmospheric nitrogen (N) deposition has been found to significantly affect plant growth and physiological performance in terrestrial ecosystems. Many individual studies have investigated how N addition influences plant functional traits, however these investigations have usually been limited to a single species, and thereby do not allow derivation of general patterns or underlying mechanisms. We synthesized data from 56 papers and conducted a meta-analysis to assess the general responses of 15 variables related to leaf economics, gas exchange, and hydraulic traits to N addition among 61 woody plant species, primarily from temperate and subtropical regions. Results showed that under N addition, leaf area index (+10.3%), foliar N content (+7.3%), intrinsic water-use efficiency (+3.1%) and net photosynthetic rate (+16.1%) significantly increased, while specific leaf area, stomatal conductance, and transpiration rate did not change. For plant hydraulics, N addition significantly increased vessel diameter (+7.0%), hydraulic conductance in stems/shoots (+6.7%), and water potential corresponding to 50% loss of hydraulic conductivity (P50, +21.5%; i.e., P50 became less negative), while water potential in leaves (−6.7%) decreased (became more negative). N addition had little effect on vessel density, hydraulic conductance in leaves and roots, or water potential in stems/shoots. N addition had greater effects on gymnosperms than angiosperms and ammonium nitrate fertilization had larger effects than fertilization with urea, and high levels of N addition affected more traits than low levels. Our results demonstrate that N addition has coupled effects on both carbon and water dynamics of woody plants. Increased leaf N, likely fixed in photosynthetic enzymes and pigments leads to higher photosynthesis and water use efficiency, which may increase leaf growth, as reflected in LAI results. These changes appear to have downstream effects on hydraulic function through increases in vessel diameter, which leads to higher hydraulic conductance, but lower water potential and increased vulnerability to embolism. Overall, our results suggest that N addition will shift plant function along a tradeoff between C and hydraulic economies by enhancing C uptake while simultaneously increasing the risk of hydraulic dysfunction.
机译:已发现大气中的氮(N)沉积会显着影响陆地生态系统中的植物生长和生理性能。许多个体研究已经研究了氮的添加如何影响植物功能性状,但是这些研究通常仅限于单个物种,因此不允许推导一般模式或潜在机制。我们综合了56篇论文的数据,并进行了荟萃分析,以评估61个木本植物物种(主要来自温带和亚热带地区)中与叶片经济性,气体交换和水力性状相关的15个变量对氮素添加的总体响应。结果表明,在添加氮的条件下,叶面积指数(+ 10.3%),叶面氮含量(+ 7.3%),内在水分利用效率(+ 3.1%)和净光合速​​率(+ 16.1%)显着增加,而特定叶片面积,气孔导度和蒸腾速率没有变化。对于工厂的液压系统,氮的添加显着增加了容器的直径(+ 7.0%),茎/茎的水力传导率(+ 6.7%)以及相应于水力传导率损失50%的水势(P50,+ 21.5%;即,P50变为负值较小),而叶片中的水势(-6.7%)降低了(变为负值)。氮的添加对血管密度,叶和根中的水力传导率或茎/枝中的水势影响很小。氮的添加对裸子植物的影响大于被子植物,而硝酸铵的施肥比尿素的施肥具有更大的作用,高含量的氮比低含量的氮对更多性状的影响更大。我们的结果表明,氮的添加对木本植物的碳和水动力学具有耦合作用。叶片氮的增加(可能固定在光合作用酶和色素中)导致更高的光合作用和水分利用效率,这可能会增加叶片的生长,如LAI结果所示。这些变化似乎通过增加容器直径而对水力功能产生下游影响,从而导致更高的水力传导率,但水势较低,易发生栓塞。总体而言,我们的结果表明,氮的添加将通过提高碳的吸收量同时在增加水力功能障碍的风险的同时,在碳和水力经济之间进行权衡。

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