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三元效应对二氧化碳同位素气体交换的影响。

Ternary effects on the gas exchange of isotopologues of carbon dioxide.

机构信息

Research School of Biology, Australian National University, Canberra, ACT 0200, Australia.

出版信息

Plant Cell Environ. 2012 Jul;35(7):1221-31. doi: 10.1111/j.1365-3040.2012.02484.x. Epub 2012 Feb 21.

Abstract

The ternary effects of transpiration rate on the rate of assimilation of carbon dioxide through stomata, and on the calculation of the intercellular concentration of carbon dioxide, are now included in standard gas exchange studies. However, the equations for carbon isotope discrimination and for the exchange of oxygen isotopologues of carbon dioxide ignore ternary effects. Here we introduce equations to take them into account. The ternary effect is greatest when the leaf-to-air vapour mole fraction difference is greatest, and its impact is greatest on parameters derived by difference, such as the mesophyll resistance to CO(2) assimilation, r(m) . We show that the mesophyll resistance to CO(2) assimilation has been underestimated in the past. The impact is also large when there is a large difference in isotopic composition between the CO(2) inside the leaf and that in the air. We show that this partially reconciles estimates of the oxygen isotopic composition of CO(2) in the chloroplast and mitochondria in the light and in the dark, with values close to equilibrium with the estimated oxygen isotopic composition of water at the sites of evaporation within the leaf.

摘要

蒸腾速率对通过气孔同化二氧化碳的速率以及细胞间隙二氧化碳浓度计算的三元效应,现在已包含在标准气体交换研究中。然而,用于碳同位素分馏和二氧化碳的氧同位素交换的方程忽略了三元效应。在这里,我们引入了考虑这些效应的方程。当叶片与空气的蒸气分压差最大时,三元效应最大,其对差分衍生参数(如 CO2 同化的叶肉阻力 r(m))的影响最大。我们表明,过去低估了 CO2 同化的叶肉阻力。当叶片内 CO2 和空气中 CO2 的同位素组成存在较大差异时,影响也很大。我们表明,这部分解释了在光和暗中叶绿体和线粒体中 CO2 的氧同位素组成的估计值与叶片内蒸发部位的估计水的氧同位素组成接近平衡的值。

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