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CO2 and Water Vapor Exchange across Leaf Cuticle (Epidermis) at Various Water Potentials.

机译:在各种水势下跨叶片表皮(表皮)的CO2和水蒸气交换。

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摘要

Cuticular properties affect the gas exchange of leaves, but little is known about how much CO2 and water vapor cross the cuticular barrier or whether low water potentials affect the process. Therefore, we measured the cuticular conductances for CO2 and water vapor in grape (Vitis vinifera L.) leaves having various water potentials. The lower leaf surface was sealed to force all gas exchange through the upper surface, which was stoma-free. In this condition both gases passed through the cuticle, and the CO2 conductance could be directly determined from the internal mole fraction of CO2 near the compensation point, the external mole fraction of CO2, and the CO2 flux. The cuticle allowed small amounts of CO2 and water vapor to pass through, indicating that gas exchange occurs in grape leaves no matter how tightly the stomata are closed. However, the CO2 conductance was only 5.7% of that for water vapor. This discrimination against CO2 markedly affected calculations of the mole fraction of CO2 in leaves as stomatal apertures decreased. When the leaf dehydrated, the cuticular conductance to water vapor decreased, and transpiration and assimilation diminished. This dehydration effect was largest when turgor decreased, which suggests that cuticular gas exchange may have been influenced by epidermal stretching.
机译:表皮特性会影响叶片的气体交换,但鲜有多少二氧化碳和水蒸气穿过表皮屏障,或者低水势是否会影响该过程,人们所知甚少。因此,我们测量了具有不同水势的葡萄(Vitis vinifera L.)叶片中CO2和水蒸气的表皮电导。密封下叶表面以迫使所有气体交换通过无气孔的上表面。在这种情况下,两种气体都通过角质层,并且可以从补偿点附近的内部CO2摩尔分数,外部CO2摩尔分数和CO2通量直接确定CO2电导率。角质层允许少量的CO2和水蒸气通过,表明无论气孔关闭得多么紧密,葡萄叶中都会发生气体交换。但是,CO2电导率仅为水蒸气的5.7%。随着气孔孔径的减小,这种对CO2的区分显着影响了叶片中CO2摩尔分数的计算。当叶片脱水时,表皮对水蒸气的电导率降低,蒸腾作用和同化作用减弱。当膨胀减少时,这种脱水作用最大,这表明表皮气体交换可能已受到表皮拉伸的影响。

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