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Insensitivity of Water-Oxidation and Photosystem II Activity in Tomato to Chilling Temperatures

机译:番茄的水氧化和光系统II活性对低温不敏感

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摘要

Chilling tomato plants (Lycopersicon esculentum Mill. cv. Rutgers and cv. Floramerica) in the dark resulted in a sizable inhibition in the rate of light- and CO2-saturated photosynthesis. However, at low light intensity, the inhibition disappeared and the absolute quantum yield of CO2 reduction was diminished only slightly. The quantum yield of photosystem II (PSII) electron flow was 18% lower when measured in chloroplasts isolated from chilled leaves than in chloroplasts isolated from unchilled leaves. Even though the maximum rate of PSII turnover in these chloroplasts was 12% lower subsequent to chilling, it was in all cases two or more times that required to support the light- and CO2-saturated rate of photosynthesis measured in the attached leaf. The concentration of active PSII centers in chloroplasts isolated from leaves either before or after chilling was determined by measurement of the products of water oxidation from a series of saturating flashes short enough to turnover the electron transport carriers only a single time. There was no significant change in the concentration of active PSII centers due to dark chilling.It was concluded that PSII activity and water oxidation capacity are not significantly impaired in tomato by chilling in the dark and therefore are not primary aspects of the inhibition of CO2 reduction observed in attached leaves.
机译:在黑暗中使番茄植物变冷(Lycopersicon esculentum Mill。cv。Rutgers和cv。Floramerica)导致对光饱和和CO2饱和的光合作用速率有相当大的抑制作用。然而,在低光照强度下,抑制作用消失了,CO 2还原的绝对量子产率仅略有降低。在从冷藏叶片中分离出的叶绿体中测得的光系统II(PSII)电子流的量子产率比未冷藏叶片中分离出的叶绿体低18%。即使这些叶绿体中PSII转化的最大速率在冷却后降低了12%,但在所有情况下,它都是支持在附着叶中测得的光合作用的光饱和度和CO2饱和度所需的两倍或更多倍。冷藏之前或之后,从叶片中分离出的叶绿体中活性PSII中心的浓度是通过测量一系列饱和闪蒸产生的水氧化产物来确定的,这些饱和闪蒸足够短,仅使电子传输载体一次通过。暗冷不会使活性PSII中心的浓度发生显着变化。结论是暗冷不会显着损害番茄PSII活性和水氧化能力,因此不是抑制CO2还原的主要方面在附着的叶子中观察到。

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