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Three pools of zeaxanthin in Quercus coccifera leaves during light transitions with different roles in rapidly reversible photoprotective energy dissipation and photoprotection

光防护 叶黄素 紫黄质 花药黄素 非光化学猝灭 玉米黄质 叶绿素荧光 化学 猝灭(荧光) 光抑制 生物物理学 叶黄素 光合作用 光化学 植物 光系统II 生物 类胡萝卜素 荧光 生物化学 物理 光学
作者
José Javier Peguero‐Pina,Eustaquio Gil‐Pelegrín,Fermı́n Morales
出处
期刊:Journal of Experimental Botany [Oxford University Press]
卷期号:64 (6): 1649-1661 被引量:38
标识
DOI:10.1093/jxb/ert024
摘要

Under excess light, the efficient PSII light-harvesting antenna is switched into a photoprotected state in which potentially harmful absorbed energy is thermally dissipated. Changes occur rapidly and reversibly, enhanced by de-epoxidation of violaxanthin (V) to zeaxanthin (Z). This process is usually measured as non-photochemical quenching (NPQ) of chlorophyll (Chl) fluorescence. Using instrumentation for instantaneous leaf freezing, NPQ, spectral reflectance, and interconversions within the xanthophyll cycle with time resolution of seconds were recorded from Quercus coccifera leaves during low light (LL) to high light (HL) transitions, followed by relaxation at LL. During the first 30 s of both the LL to HL and HL to LL transitions, no activity of the xanthophyll cycle was detected, whereas 70–75% of the NPQ was formed and relaxed, respectively, by that time, the latter being traits of a rapidly reversible photoprotective energy dissipation. Three different Z pools were identified, which play different roles in energy dissipation and photoprotection. In conclusion, ΔpH was crucial to NPQ formation and relaxation in Q. coccifera during light transitions. Only a minor fraction of Z was associated to quenching, whereas the largest Z pool was not related to thermal dissipation. The latter is proposed to participate in photoprotection acting as antioxidant.
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