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首页> 外文期刊>Photosynthesis Research: An International Journal >Photochemical reactions of chlorophyll in dehydrated Photosystem II: two chlorophyll forms (680 and 700 nm)
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Photochemical reactions of chlorophyll in dehydrated Photosystem II: two chlorophyll forms (680 and 700 nm)

机译:脱水光系统II中叶绿素的光化学反应:两种叶绿素形式(680和700 nm)

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Lichens and phototolerant poikilohydric mosses differ from spinach leaves, fern fronds or photosensitive mosses in that they show strongly decreased F-o chlorophyll fluorescence after drying. This desiccation-induced fluorescence loss is rapidly reversible under rehydration. Fluorescence emission from Photosystem II at 685 nm was decreased more strongly by dehydration than 720 nm emission. Reaction centers of Photosystem II lose activity on dehydration and regain it on hydration. Heating of desiccated lichens increased F-o chlorophyll fluorescence. The activation energy for the reversible part of the temperature-dependent fluorescence increase was 0.045 eV, which corresponds to the energy difference between the 680 and 697 nm absorption bands. In desiccated chlorolichens such as Parmelia sulcata, heating induces the appearance of positive variable fluorescence related to the reversible reduction of Q(A) due to overcoming the energy barrier. This is interpreted to provide information on the mechanism of photoprotection: energy is dissipated by changing Chl680 or P680 into a chlorophyll form, which absorbs at 700 nm and emits light at 720 nm (Chl-720 or P680(700)) with a low quantum yield. Dissipation of light energy in this trap is activated by desiccation.
机译:地衣和耐光性鬼臼苔藓与菠菜叶,蕨类植物或光敏苔藓的不同之处在于,干燥后它们的F-o叶绿素荧光大大降低。这种脱水引起的荧光损失在补液后可迅速逆转。与720 nm发射相比,通过脱水作用,来自Photosystem II的685 nm荧光发射的降低幅度更大。 Photosystem II的反应中心在脱水时会失去活性,而在水合作用时会恢复活性。干燥地衣的加热增加了F-o叶绿素荧光。温度依赖性荧光增加的可逆部分的活化能为0.045 eV,这对应于680和697 nm吸收带之间的能量差。在干燥的氯地衣中,如苏木(Parmelia sulcata),加热会导致正可变荧光的出现,这与由于克服了能垒而导致的Q(A)的可逆减少有关。这被解释为提供有关光保护机制的信息:通过将Chl680或P680变为叶绿素形式来耗散能量,该叶绿素形式在700 nm处吸收并在720 nm处发射光(Chl-720或P680(700)),且具有低量子让。该陷阱中的光能耗散通过干燥而激活。

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