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A Model of plant isoprene emission based on available reducing power captures responses to atmospheric CO₂

机译:基于可利用的降低功率的植物异戊二烯排放模型可捕获对大气CO 2的响应

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摘要

We present a unifying model for isoprene emission by photosynthesizing leaves based on the hypothesis that isoprene biosynthesis depends on a balance between the supply of photosynthetic reducing power and the demands of carbon fixation. We compared the predictions from our model, as well as from two other widely used models, with measurements of isoprene emission from leaves of Populus nigra and hybrid aspen (Populus tremula × P. tremuloides) in response to changes in leaf internal CO₂ concentration (Ci) and photosynthetic photon flux density (PPFD) under diverse ambient CO₂ concentrations (Cₐ). Our model reproduces the observed changes in isoprene emissions with Ci and PPFD, and also reproduces the tendency for the fraction of fixed carbon allocated to isoprene to increase with increasing PPFD. It also provides a simple mechanism for the previously unexplained decrease in the quantum efficiency of isoprene emission with increasing Cₐ. Experimental and modelled results support our hypothesis. Our model can reproduce the key features of the observations and has the potential to improve process-based modelling of isoprene emissions by land vegetation at the ecosystem and global scales.
机译:我们基于异戊二烯生物合成取决于光合还原能力的供应和碳固定需求之间的平衡这一假设,提出了一种通过光合作用叶片使异戊二烯排放的统一模型。我们将模型以及其他两个广泛使用的模型中的预测值与黑杨和杂种白杨(Populus tremula×P. tremuloides)叶片对叶片内部CO 2浓度(Ci)变化的异戊二烯排放量进行了比较。 )和在不同环境CO 2浓度(C 4)下的光合光子通量密度(PPFD)。我们的模型重现了观察到的Ci和PPFD异戊二烯排放量的变化,还重现了分配给异戊二烯的固定碳比例随PPFD的增加而增加的趋势。它也提供了一个简单的机制,可以解决C +增加时异戊二烯发射的量子效率先前无法解释的下降。实验和建模结果支持我们的假设。我们的模型可以重现观测结果的关键特征,并有可能改善生态系统和全球范围内陆地植被异戊二烯排放的基于过程的建模。

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