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Leaf-level photosynthetic capacity in lowland Amazonian and high-1 elevation, Andean tropical moist forests of Peru

机译:秘鲁安第斯热带湿润森林低陆亚马逊河和高海拔1级植物的叶水平光合能力

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摘要

We examined whether variations in photosynthetic capacity are linked to variations in the environment and/or associated leaf traits for tropical moist forests (TMFs) in the Andes/western Amazon regions of Peru. We compared photosynthetic capacity (maximal rate of carboxylation of Rubisco (Vcmax), and the maximum rate of electron transport (Jmax)), leaf mass, nitrogen (N) and phosphorus (P) per unit leaf area (Ma, Na and Pa, respectively), and chlorophyll from 210 species at 18 field sites along a 3300-m elevation gradient. Western blots were used to quantify the abundance of the CO2-fixing enzyme Rubisco. Area- and N-based rates of photosynthetic capacity at 25°C were higher in upland than lowland TMFs, underpinned by greater investment of N in photosynthesis in high-elevation trees. Soil [P] and leaf Pa were key explanatory factors for models of area-based Vcmax and Jmax but did not account for variations in photosynthetic N-use efficiency. At any given Na and Pa, the fraction of N allocated to photosynthesis was higher in upland than lowland species. For a small subset of lowland TMF trees examined, a substantial fraction of Rubisco was inactive. These results highlight the importance of soil- and leaf-P in defining the photosynthetic capacity of TMFs, with variations in N allocation and Rubisco activation state further influencing photosynthetic rates and N-use efficiency of these critically important forests.
机译:我们检查了秘鲁安第斯山脉/亚马逊西部地区热带湿润森林(TMF)的光合能力变化是否与环境变化和/或相关叶性状有关。我们比较了光合能力(Rubisco的最大羧化速率(Vcmax)和最大电子传输速率(Jmax)),每单位叶面积(Ma,Na和Pa,叶质量,氮(N)和磷(P),分别)和沿3300-m海拔梯度来自18个田地的210种植物的叶绿素。 Western印迹用于定量固定CO2的固定酶Rubisco的丰度。在高海拔树上,氮在氮素方面的投入较大,这证明了在25°C下,陆地上基于氮的面积和氮素的光合速率高于低地TMF。土壤[P]和叶Pa是基于面积的Vcmax和Jmax模型的关键解释因素,但没有考虑光合氮利用效率的变化。在任何给定的Na和Pa下,高地中分配给光合作用的N的比例要高于低地物种。对于检查的一小部分低地TMF树,鲁比斯科(Rubisco)的大部分处于非活动状态。这些结果突出了土壤和叶磷在定义TMF的光合能力方面的重要性,氮分配和Rubisco活化状态的变化进一步影响了这些至关重要的森林的光合速率和氮利用效率。

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    Bahar, Nur H.A.;

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  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 eng
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