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首页> 外文期刊>Ecoscience >Mass- and area-based contents in nitrogen, proteins, and chlorophyll within crowns of balsam fir (Abies balsamea) and black spruce (Picea mariana) trees located along a temperature gradient
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Mass- and area-based contents in nitrogen, proteins, and chlorophyll within crowns of balsam fir (Abies balsamea) and black spruce (Picea mariana) trees located along a temperature gradient

机译:氮气,蛋白质和叶绿素中的肿块和面积基于Balsam FIR(贝尔斯米亚亚马逊)和黑色云杉(Picea Mariana)树木的叶绿素,沿着温度梯度

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摘要

The variation in nitrogen, insoluble and soluble proteins, and chlorophyll concentrations (mg.g(-1)) and contents per unit leaf area (mg.cm(-2)) as a function of specific leaf area (SLA) was examined in leaves sampled at the bottom, middle, and upper sections of the crowns of balsam fir (Abies balsamea) and black spruce (Picea mariana) trees located along a temperature gradient in Quebec, Canada. Differences in needle dimensions, mass, surface, and SLA among crown sections and needle age were more pronounced for balsam fir than for black spruce. Relationships of foliage nitrogen, insoluble and soluble proteins, and chlorophyll content per unit leaf area as a function of SLA were generally more significant than those based on concentration. However, the different variables varied little along a temperature gradient. The higher significance of area-based relationships in comparison with mass-based relationships was attributed to the change in leaf morphology in response to light availability within the crown. Yet, nitrogen availability most likely restricted light acclimation to changes in morphology, since there was very limited modulation of nitrogen partitioning among the different protein fractions as a function of light environment.
机译:检查氮,不溶性和可溶性蛋白质的变化,叶绿素浓度(Mg.g.G(-1))和每单位叶面积(Mg.cm(-2))的含量作为特定叶面积(SLA)叶子在沿着加拿大魁北克魁北克的温度梯度沿着温度梯度落实的Balsam FIR(Abies Balsamea)和黑云杉(Picea Mariana)树的底部,中间和上部。对于黑云杉比黑云,冠部和针时代中针尺寸,质量,表面和SLA的差异比黑云杉更为显着。叶片氮,不溶性和可溶性蛋白质的关系和单位叶面积作为SLA函数的叶绿素含量通常比基于浓度的叶片的关系。然而,不同的变量沿温度梯度变化略微不同。与基于质量基关系相比,基于面积关系的较高意义归因于响应冠内的光可用性叶形形态的变化。然而,氮可用性最有可能限制对形态的变化的光驯化,因为不同蛋白质级分的氮分配的调节非常有限,作为光环境的函数。

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