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Low Growth Temperature Effects a Differential Inhibition of Photosynthesis in Spring and Winter Wheat 1

机译:低生长温度影响春小麦和冬小麦光合作用的差异抑制1

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摘要

In vivo room temperature chlorophyll a fluorescence coupled with CO2 and O2 exchange was measured to determine photosynthetic limitation(s) for spring and winter wheat (Triticum aestivum L.) grown at cold-hardening temperatures (5°C/5°C, day/night). Plants of comparable physiological stage, but grown at nonhardening temperatures (20°C/16°C, day/night) were used in comparison. Winter wheat cultivars grown at 5°C had light-saturated rates of CO2 exchange and apparent photon yields for CO2 exchange and O2 evolution that were equal to or greater than those of winter cultivars grown at 20°C. In contrast, spring wheat cultivars grown at 5°C showed 35% lower apparent photon yields for CO2 exchange and 25% lower light-saturated rates of CO2 exchange compared to 20°C grown controls. The lower CO2 exchange capacity is not associated with a lower efficiency of photosystem II activity measured as either the apparent photon yield for O2 evolution, the ratio of variable to maximal fluorescence, or the level of reduced primary quinone electron acceptor maintained at steady-state photosynthesis, and is most likely associated with carbon metabolism. The lower CO2 exchange capacity of the spring cultivars developed following long-term exposure to low temperature and did not occur following over-night exposure of nonhardened plants to 5°C.
机译:测量体内室温下叶绿素的荧光以及CO2和O2交换,以确定在冷硬化温度(5°C / 5°C,天/天)下生长的春小麦和冬小麦(Triticum aestivum L.)的光合作用极限。晚)。作为比较,使用了生理阶段相当但在非硬化温度(20°C / 16°C,昼/夜)下生长的植物。在5°C下生长的冬小麦品种具有轻度饱和的CO2交换速率,并且表观上光子的CO2交换和O2释放的光子产量等于或大于在20°C下生长的冬小麦品种。相反,与20°C种植的对照相比,在5°C下种植的春小麦品种的CO2交换表观光子产量降低了35%,CO2交换的光饱和速率降低了25%。较低的CO2交换能力与较低的光系统II活性效率无关,该光系统II的测量值可能是氧气逸出的表观光子产量,可变荧光与最大荧光之比或稳态光合作用下还原的初级醌电子受体的水平,最有可能与碳代谢有关。长期暴露于低温之后,春季品种的CO2交换能力降低,而未硬化的植物在5°C下通宵暴露则没有发生。

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