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Modelling the dynamics of the electron transport rate measured by PAM fluorimetry during Rapid Light Curve experiments

机译:模拟快速光曲线实验中通过PAM荧光法测量的电子传输速率的动力学

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We propose a dynamic model specifically designed to simulate changes in the photosynthetic electron transport rate, which is calculated from fluorescence measurements when plants are exposed, for a short time, to a series of increasing photon flux densities. This model simulates the dynamics of the effective yield of photochemical energy conversion from the maximum and natural chlorophyll fluorescence yields, taking into account a cumulative effect of successive irradiations on photosystems. To estimate a characteristic time of this effect on photosystems, two series of experiments were performed on two benthic diatom culture concentrations. For each concentration, two different series of irradiations were applied. Simplified formulations of the model were established based on the observed fluorescence curves. The simplified versions of the model streamlined the parameters estimation procedure. For the most simplified version of the model (only 4 parameters) the order of magnitude of the characteristic time of the residual effect of irradiation was about 38 s (within a confidence interval between 20 and 252 s). The model and an appropriate calibration procedure may be used to assess the physiological condition of plants experiencing short time-scale irradiance changes in experimental or field conditions.
机译:我们提出了一个动态模型,该模型专门设计用于模拟光合电子传输速率的变化,该变化是根据植物在短时间内暴露于一系列不断增加的光子通量密度时的荧光测量结果计算得出的。考虑到连续照射对光系统的累积影响,该模型从最大叶绿素和天然叶绿素荧光产量模拟了光化学能转化有效产量的动力学。为了估计这种作用对光系统的特征时间,对两个底栖硅藻培养物浓度进行了两个系列的实验。对于每种浓度,应用两个不同系列的照射。根据观察到的荧光曲线建立模型的简化公式。该模型的简化版本简化了参数估计过程。对于模型的最简化版本(仅4个参数),辐射残留效应的特征时间的量级约为38 s(在20到252 s之间的置信区间内)。该模型和适当的校准程序可用于评估在实验或田间条件下经历短时标辐照度变化的植物的生理条件。

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