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Photon flux density and temperature-dependent responses of photosynthesis and photosystem II performance of apple leaves grown in field conditions

机译:田间条件下生长的苹果叶片光合作用密度和光合作用的温度依赖性响应及光系统II性能

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The process of photosynthesis depends on the light, and is modulated by leaf temperature and their interaction is important to understand how climate affects photosynthesis. Photosynthetic and PSII light responses at a range of leaf temperatures were measured on leaves of apple (Malus domestica Borkh. cv. Red Gala) trees growing in field conditions. The objective was to assess the interaction between photon flux density (PFD) and temperature on these processes. Results showed leaf temperature strongly modulated the PFD-dependent response of photosynthesis and PSII performance. An interaction on photosynthesis occurred, with temperature affecting saturated rates as well as PFDs saturating photosynthesis. The efficiency of PSII electron transport (operating and maximum in light) universally declined with increasing PFD but temperature strongly influenced the response. Rates of PSII electron transport at saturating PFDs were affected by temperatures. Both photochemical quenching and non-photochemical quenching also responded strongly to temperature but at high PFDs, photochemical quenching increased linearly with decreasing temperatures while non-photochemical quenching increased curvilinearly with increasing temperatures. Modelling revealed changes in photosynthesis were positively correlated with rates of electron transport. These results greatly enhance our understanding of photosynthesis and the underpinning processes and their responses to temperature and PFD.
机译:光合作用的过程取决于光线,并受叶片温度的调节,它们的相互作用对于了解气候如何影响光合作用非常重要。在田间条件下生长的苹果树(Malus domestica Borkh。cv。Red Gala)的叶片上,测量了叶片温度范围内的光合作用和PSII光响应。目的是评估这些过程中光子通量密度(PFD)和温度之间的相互作用。结果表明,叶片温度强烈调节了PFD依赖的光合作用和PSII性能。光合作用发生相互作用,温度影响饱和速率以及PFD饱和光合作用。随着PFD的增加,PSII电子传输的效率(工作时的效率和最大的光效率)普遍下降,但温度强烈影响响应。饱和PFD处PSII电子传输的速率受温度影响。光化学猝灭和非光化学猝灭都对温度也有很强的响应,但是在高PFD下,光化学猝灭随着温度降低而线性增加,而非光化学猝灭随着温度升高而线性增加。建模揭示了光合作用的变化与电子传输速率正相关。这些结果大大增强了我们对光合作用和基础过程及其对温度和PFD的响应的理解。

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