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Effect of Altitude on the Response of Net Photosynthetic Rate to Carbon Dioxide Increase by Spring Wheat

机译:海拔高度对春小麦净光合速率对二氧化碳增加响应的影响

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The partial pressure of CO2 in air decreases with the increase in altitude. Therefore, increase in molar concentration of CO2 is smaller at higher altitudes than at lower altitudes for increases in molar fraction of CO2. This study aimed to predict the effect of global CO2 increase on net photosynthetic rate of spring wheat (Triticum aestivum L.) at high altitudes. The net photosynthetic rate of spring wheat grown in Lhasa (3688 m above sea level), China, was compared with that of the same cultivar grown in Sapporo (15 m above sea level), Japan. At the current level of CO2, it was significantly lower in Lhasa than in Sapporo, and stomatal conductance, chlorophyll content (SPAD value) and apparent quantum yield were similar in both locations. The interaction of CO2 level and altitude was suggested; the amount of increase in net photosynthetic rate caused by increase in CO2 was smaller at high altitudes than at low altitudes. Lower CO2 partial pressure at higher altitude could explain the difference in net photosynthetic rate between altitudes, and the interaction of CO2 level and altitude.
机译:空气中CO2的分压随高度的增加而降低。因此,对于较高的CO 2摩尔分数,在较高的高度处CO 2的摩尔浓度的增加小于在较低的高度处。这项研究旨在预测高海拔地区全球CO2增加对春小麦(Triticum aestivum L.)净光合速率的影响。将中国拉萨(海拔3688 m)种植的春小麦的净光合速率与日本札幌(海拔15 m)种植的相同品种的净光合速率进行了比较。在目前的二氧化碳水平下,拉萨的二氧化碳含量显着低于札幌,并且两个地区的气孔导度,叶绿素含量(SPAD值)和表观量子产率相似。建议二氧化碳水平和海拔高度之间的相互作用;高海拔地区由二氧化碳增加引起的净光合速率增加的量要小于低海拔地区。较高海拔下较低的CO2分压可以解释海拔之间净光合速率的差异以及CO2水平与海拔之间的相互作用。

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