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首页> 外文期刊>Plant and cell physiology >Contribution of PsbS Function and Stomatal Conductance to Foliar Temperature in Higher Plants
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Contribution of PsbS Function and Stomatal Conductance to Foliar Temperature in Higher Plants

机译:PsbS功能和气孔导度对高等植物叶片温度的贡献

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摘要

Natural capacity has evolved in higher plants to absorb and harness excessive light energy. In basic models, the majority of absorbed photon energy is radiated back as fluorescence and heat. For years the proton sensor protein PsbS was considered to play a critical role in non-photochemical quenching (NPQ) of light absorbed by PSII antennae and in its dissipation as heat. However, the significance of PsbS in regulating heat emission from a whole leaf has never been verified before by direct measurement of foliar temperature under changing light intensity. To test its validity, we here investigated the foliar temperature changes on increasing and decreasing light intensity conditions (foliar temperature dynamics) using a high resolution thermal camera and a powerful adjustable light-emitting diode (LED) light source. First, we showed that light-dependent foliar temperature dynamics is correlated with Chl content in leaves of various plant species. Secondly, we compared the foliar temperature dynamics in Arabidopsis thaliana wild type, the PsbS null mutant npq4-1 and a PsbS-overexpressing transgenic line under different transpiration conditions with or without a photosynthesis inhibitor. We found no direct correlations between the NPQ level and the foliar temperature dynamics. Rather, differences in foliar temperature dynamics are primarily affected by stomatal aperture, and rapid foliar temperature increase during irradiation depends on the water status of the leaf. We conclude that PsbS is not directly involved in regulation of foliar temperature dynamics during excessive light energy episodes.
机译:高等植物已经吸收和利用了过多的光能,因此自然能力得到了发展。在基本模型中,大部分吸收的光子能量以荧光和热量的形式辐射回去。多年来,质子传感器蛋白PsbS被认为在PSII天线吸收的光的非光化学猝灭(NPQ)及其作为热量的耗散中起关键作用。然而,以前从未通过直接测量变化的光强度下的叶温来验证PsbS在调节整片叶子中的热量中的重要性。为了测试其有效性,我们在这里使用高分辨率热像仪和功能强大的可调发光二极管(LED)光源,研究了在增加和减少的光强度条件下(叶温度动态)叶温度的变化。首先,我们表明光依赖的叶温动态与各种植物叶片中的Chl含量相关。其次,我们比较了在有或没有光合作用抑制剂的情况下,不同蒸腾条件下拟南芥野生型,PsbS无效突变体npq4-1和PsbS过表达的转基因株系叶片温度的动态变化。我们发现NPQ水平与叶片温度动态之间没有直接相关性。相反,叶温度动态的差异主要受气孔孔径影响,辐照期间叶温度的快速升高取决于叶片的水分状况。我们得出的结论是,PsbS在过量的光能事件期间不直接参与叶温度动态的调节。

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