首页> 美国卫生研究院文献>Journal of Experimental Botany >Zeaxanthin-independent energy quenching and alternative electron sinks cause a decoupling of the relationship between the photochemical reflectance index (PRI) and photosynthesis in an evergreen conifer during spring
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Zeaxanthin-independent energy quenching and alternative electron sinks cause a decoupling of the relationship between the photochemical reflectance index (PRI) and photosynthesis in an evergreen conifer during spring

机译:玉米黄质不依赖的能量猝灭和替代性电子吸收导致春季常绿针叶树的光化学反射指数(PRI)与光合作用之间的关系解耦

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摘要

In evergreen conifers, the winter down-regulation of photosynthesis and its recovery during spring are the result of a reorganization of the chloroplast and adjustments of energy-quenching mechanisms. These phenological changes may remain undetected by remote sensing, as conifers retain green foliage during periods of photosynthetic down-regulation. The aim was to assess if the timing of the spring recovery of photosynthesis and energy-quenching characteristics are accurately monitored by the photochemical reflectance index (PRI) in the evergreen conifer Pinus strobus. The recovery of photosynthesis was studied using chlorophyll fluorescence, leaf gas exchange, leaf spectral reflectance, and photosynthetic pigment measurements. To assess if climate change might affect the recovery of photosynthesis, seedlings were exposed to cold spring conditions or warm spring conditions with elevated temperature. An early spring decoupling of the relationship between photosynthesis and PRI in both treatments was observed. This was caused by differences between the timing of the recovery of photosynthesis and the timing of carotenoid and chlorophyll pool size adjustments which are the main factors controlling PRI during spring. It was also demonstrated that zeaxanthin-independent NPQ mechanisms undetected by PRI further contributed to the early spring decoupling of the PRI–LUE relationship. An important mechanism undetected by PRI seems to involve increased electron transport around photosystem I, which was a significant energy sink during the entire spring transition, particularly in needles exposed to a combination of high light and cold temperatures.
机译:在常绿针叶树中,冬季光合作用的下调及其在春季的恢复是叶绿体重组和能量猝灭机制调整的结果。这些针叶树的变化可能仍未通过遥感检测到,因为针叶树在光合作用下调期间会保留绿叶。目的是评估常绿针叶树Pinus strobus中光化学反射指数(PRI)是否能准确监测春季光合作用恢复的时间和能量猝灭特性。使用叶绿素荧光,叶片气体交换,叶片光谱反射率和光合色素测量来研究光合作用的恢复。为了评估气候变化是否会影响光合作用的恢复,将幼苗置于温度升高的冷泉或暖春条件下。在两种处理中均观察到早春的光合作用与PRI之间的关系解耦。这是由于光合作用的恢复时间与类胡萝卜素和叶绿素池大小调整的时间之间的差异而引起的,而这是春季控制PRI的主要因素。还证明了PRI未检测到的与玉米黄素无关的NPQ机制进一步促进了PRI-LUE关系的早期春季解耦。 PRI未发现的重要机制似乎涉及增加光电子系统I周围的电子传输,这是整个弹簧过渡期间的重要能量吸收,特别是在暴露于高光和冷温度的组合下的针中。

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