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A mechanistic model for the photosynthesis-light response based on the photosynthetic electron transport of photosystem II in C_3 and C_4 species

机译:基于光系统II在C_3和C_4物种中的光合电子传递的光合作用-光响应的机理模型

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摘要

A new mechanistic model of the photosynthesis-light response is developed based on photosynthetic electron transport via photosystem II (PSII) to specifically describe light-harvesting characteristics and associated biophysical parameters of photosynthetic pigment molecules. This model parameterizes 'core' characteristics not only of the light response but also of difficult to measure physical parameters of photosynthetic pigment molecules in plants. Application of the model to two C3 and two C4 species grown under the same conditions demonstrated that the model reproduced extremely well (r2 > 0.992) the light response trends of both electron transport and C02 uptake. In all cases, the effective absorption cross-section of photosynthetic pigment molecules decreased with increasing light intensity, demonstrating novel operation of a key mechanism for plants to avoid high light damage. In parameterizing these previously difficult to measure characteristics of light harvesting in higher plants, the model provides a new means to understand the mechanistic processes underpinning variability of C02 uptake, for example, photosynthetic down-regulation or reversible photoinhibition induced by high light and photoprotection. However, an important next stepis validating this parameterization, possibly through application to less structurally complex organisms such as single-celled algae.
机译:基于光合电子通过光系统II(PSII)的光合作用,开发了一种新的光合作用-光响应机理模型,以专门描述光合色素分子的光收集特性和相关的生物物理参数。该模型不仅参数化了光响应的“核心”特征,而且还参数化了难以测量植物中光合色素分子的物理参数的特征。将模型应用于在相同条件下生长的两个C3和两个C4物种后,表明该模型可非常好地复制(r2> 0.992)电子传输和吸收CO2的光响应趋势。在所有情况下,光合色素分子的有效吸收截面随光强度的增加而降低,证明了植物避免高光害的关键机制的新颖运作。在对这些以前难以测量的高等植物光收集特征进行参数化时,该模型提供了一种新的方法,可以理解支撑CO2吸收变化的机制过程,例如,高光和光保护引起的光合作用下调或可逆光抑制。然而,重要的下一步是验证此参数设置,可能是通过将其应用于结构较简单的生物(如单细胞藻类)。

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