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Long-term effects of 7-year warming experiment in the field on leaf hydraulic and economic traits of subtropical tree species

机译:亚热带树种叶片水力和经济性状的7年变暖实验的长期影响

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摘要

Rising temperature associated with climate change may have substantial impacts on forest tree functions. We conducted a 7-year warming experiment in subtropical China by translocating important native forest tree species (Machilas breviflora, Syzygium rehderianum, Schima superba and Itea chinensis) from cooler high-elevation sites (600 m) to 1-2 degrees C warmer low-elevation sites (300 and 30 m) to investigate warming effects on leaf hydraulic and economic traits. Here, we report data from the last 3 years (Years 5-7) of the experiment. Warming increased leaf hydraulic conductance of S. superba to meet the higher evaporative demand. M. breviflora (300 m), S. rehderianum, S. superba and I. chinensis (300 and 30 m) exhibited higher area-based and mass-based maximum photosynthetic rates (A(a) and A(m), respectively) related to increasing stomatal conductance (g(s)) and stomatal density in the wet season, which led to rapid growth; however, we observed decreased growth of M. breviflora at 30 m due to lower stomatal density and decreased A(a) in the wet season. Warming increased photosynthetic nitrogen-use efficiency and photosynthetic phosphorus-use efficiency, but reduced leaf dry mass per unit area due to lower leaf thickness, suggesting that these tree species allocated more resources into upregulating photosynthesis rather than into structural investment. Our findings highlight that there was trait variation in the capacity of trees to acclimate to warmer temperatures such that I. chinensis may benefit from warming, but S. superba may be negatively influenced by warming in future climates.
机译:与气候变化相关的温度可能对森林树木功能有很大影响。我们通过将重要的原生林树物种(Machilas Breviflora,Syzygium Rehderianum,Schima Superbansis)从较冷的高升高点(600米)升温至1-2摄氏度,在亚热带亚热带亚热带进行了7年的热化实验海拔地点(300和30米)调查对叶子液压和经济性状的变暖效果。在这里,我们从实验的过去3年(年5-7)报告数据。温暖的S. Superba的叶子液压导量增加,以满足较高的蒸发需求。 M.Breviflora(300米),S.Rehderianum,S. Superba和I.Chinensis(300和30米)表现出高的基于面积和基于质量的光合速率(A(a)和a(m))涉及湿季节的气孔电导(g(s))和气孔密度导致快速增长;然而,由于较低的气孔密度,观察到在30米处观察到M.Breviflora的生长降低,并且在湿季节下降了(a)。温暖的光合氮利用效率和光合磷使用效率,但由于叶片厚度降低,每单位面积的叶干质量减少,表明这些树种将更多资源分配到上调光合作用而不是结构投资。我们的调查结果强调,树木的能力变化,以适应温暖的温度,使得I. Chinensis可能受益于变暖,但S. Superba可能因未来的气候变暖而受到负面影响。

著录项

  • 来源
    《Global change biology》 |2020年第12期|共14页
  • 作者单位

    Chinese Acad Sci Key Lab Vegetat Restorat &

    Management Degraded Ec South China Bot Garden Guangzhou Peoples R China;

    Western Sydney Univ Hawkesbury Inst Environm Hawkesbury Campus Penrith NSW Australia;

    Chinese Acad Sci Key Lab Vegetat Restorat &

    Management Degraded Ec South China Bot Garden Guangzhou Peoples R China;

    Chinese Acad Sci Key Lab Vegetat Restorat &

    Management Degraded Ec South China Bot Garden Guangzhou Peoples R China;

    Chinese Acad Sci Key Lab Vegetat Restorat &

    Management Degraded Ec South China Bot Garden Guangzhou Peoples R China;

    Chinese Acad Sci Key Lab Vegetat Restorat &

    Management Degraded Ec South China Bot Garden Guangzhou Peoples R China;

    Chinese Acad Sci Key Lab Vegetat Restorat &

    Management Degraded Ec South China Bot Garden Guangzhou Peoples R China;

    Chinese Acad Sci Key Lab Vegetat Restorat &

    Management Degraded Ec South China Bot Garden Guangzhou Peoples R China;

    Chinese Acad Sci Key Lab Vegetat Restorat &

    Management Degraded Ec South China Bot Garden Guangzhou Peoples R China;

    Chinese Acad Sci Key Lab Vegetat Restorat &

    Management Degraded Ec South China Bot Garden Guangzhou Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物候学;生物科学;
  • 关键词

    7amp; 8208; year field warming; leaf economic traits; leaf hydraulic traits; LMA; phenotypic plasticity; subtropical forest;

    机译:7&8208;年田间变暖;叶子经济特征;叶液性状;LMA;表型可塑性;亚热带森林;

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