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Can the Responses of Photosynthesis and Stomatal Conductance to Water and Nitrogen Stress Combinations Be Modeled Using a Single Set of Parameters?

机译:是否可以使用一组参数来模拟光合作用和气孔导度对水和氮胁迫组合的响应?

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摘要

Accurately predicting photosynthesis in response to water and nitrogen stress is the first step toward predicting crop growth, yield and many quality traits under fluctuating environmental conditions. While mechanistic models are capable of predicting photosynthesis under fluctuating environmental conditions, simplifying the parameterization procedure is important toward a wide range of model applications. In this study, the biochemical photosynthesis model of Farquhar, von Caemmerer and Berry (the FvCB model) and the stomatal conductance model of Ball, Woodrow and Berry which was revised by Leuning and Yin (the BWB-Leuning-Yin model) were parameterized for Lilium (L. auratum × speciosum “Sorbonne”) grown under different water and nitrogen conditions. Linear relationships were found between biochemical parameters of the FvCB model and leaf nitrogen content per unit leaf area (Na), and between mesophyll conductance and Na under different water and nitrogen conditions. By incorporating these Na-dependent linear relationships, the FvCB model was able to predict the net photosynthetic rate (An) in response to all water and nitrogen conditions. In contrast, stomatal conductance (gs) can be accurately predicted if parameters in the BWB-Leuning-Yin model were adjusted specifically to water conditions; otherwise gs was underestimated by 9% under well-watered conditions and was overestimated by 13% under water-deficit conditions. However, the 13% overestimation of gs under water-deficit conditions led to only 9% overestimation of An by the coupled FvCB and BWB-Leuning-Yin model whereas the 9% underestimation of gs under well-watered conditions affected little the prediction of An. Our results indicate that to accurately predict An and gs under different water and nitrogen conditions, only a few parameters in the BWB-Leuning-Yin model need to be adjusted according to water conditions whereas all other parameters are either conservative or can be adjusted according to their linear relationships with Na. Our study exemplifies a simplified procedure of parameterizing the coupled FvCB and gs model that is widely used for various modeling purposes.
机译:准确预测响应水和氮胁迫的光合作用是在波动的环境条件下预测作物生长,产量和许多品质性状的第一步。虽然机械模型能够预测在变化的环境条件下的光合作用,但是简化参数化过程对于各种模型应用而言都很重要。在这项研究中,参数化了Farquhar,von Caemmerer和Berry的生化光合作用模型(FvCB模型)以及由Leuning和Yin修改的Ball,Woodrow和Berry的气孔电导模型(BWB-Leuning-Yin模型)进行参数设置在不同的水和氮条件下生长的百合(L. auratum×speciosum“ Sorbonne”)。在不同水和氮条件下,FvCB模型的生化参数与每单位叶面积(Na)的叶氮含量之间以及叶肉电导和Na之间存在线性关系。通过合并这些依赖于Na的线性关系,FvCB模型能够预测对所有水和氮条件的净光合速率(An)。相反,如果BWB-Leuning-Yin模型中的参数专门针对水条件进行调整,则可以准确预测气孔电导(gs)。否则,在充水条件下,gs被低估了9%,而在缺水条件下,被高估了13%。然而,在缺水条件下对gs的高估13%导致FvCB和BWB-Leuning-Yin耦合模型对An的高估仅9%,而在水源充足的条件下gs的低估9%对An的预测影响不大。 。我们的结果表明,要准确预测不同水和氮条件下的An和gs,只需根据水条件调整BWB-Leuning-Yin模型中的几个参数,而所有其他参数要么是保守的,要么可以根据它们与Na的线性关系。我们的研究示例了简化的参数化耦合FvCB和 g s模型的简化过程,该模型广泛用于各种建模目的。

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