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The Arabidopsis szl1 mutant reveals a Critical role of β-carotene in photosystem I photoprotection

机译:拟南芥szl1突变体揭示了β-胡萝卜素在光系统I光保护中的关键作用

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摘要

Carotenes and their oxygenated derivatives, the xanthophylls, are structural determinants in both photosystems (PS) I and II. They bind and stabilize photosynthetic complexes, increase the light-harvesting capacity of chlorophyll-binding proteins, and have a major role in chloroplast photoprotection. Localization of carotenoid species within each PS is highly conserved: Core complexes bind carotenes, whereas peripheral light-harvesting systems bind xanthophylls. The specific functional role of each xanthophyll species has been recently described by genetic dissection, however the in vivo role of carotenes has not been similarly defined. Here, we have analyzed the function of carotenes in photosynthesis and photoprotection, distinct from that of xanthophylls, by characterizing the suppressor of zeaxanthin-less (szl) mutant of Arabidopsis (Arabidopsis thaliana) which, due to the decreased activity of the lycopene-b-cyclase, shows a lower carotene content than wild-type plants. When grown at room temperature, mutant plants showed a lower content in PSI light-harvesting complex I complex than the wild type, and a reduced capacity for chlorophyll fluorescence quenching, the rapidly reversible component of nonphotochemical quenching. When exposed to high light at chilling temperature, szl1 plants showed stronger photoxidation than wild-type plants. Both PSI and PSII from szl1 were similarly depleted in carotenes and yet PSI activity was more sensitive to light stress than PSII as shown by the stronger photoinhibition of PSI and increased rate of singlet oxygen release from isolated PSI light-harvesting complex I complexes of szl1 compared with the wild type. We conclude that carotene depletion in the core complexes impairs photoprotection of both PS under high light at chilling temperature, with PSI being far more affected than PSII.
机译:胡萝卜素及其氧化衍生物叶黄素是光系统(PS)I和II中的结构决定因素。它们结合并稳定光合复合物,增加叶绿素结合蛋白的光收集能力,并在叶绿体光保护中起主要作用。每个PS中类胡萝卜素种类的定位高度保守:核心复合物结合胡萝卜素,而外围光收集系统结合叶黄素。最近通过遗传解剖描述了每种叶黄素种类的特定功能作用,但是胡萝卜素的体内作用尚未得到类似的定义。在这里,我们通过表征拟南芥(Arabidopsis thaliana)不含玉米黄素(szl)突变体的抑制子,分析了胡萝卜素在光合作用和光保护中的作用,这些作用与叶黄素不同,这是由于番茄红素-b的活性降低-环化酶比野生型植物显示出较低的胡萝卜素含量。当在室温下生长时,突变植物的PSI采光复合物I复合物中的含量比野生型低,而叶绿素荧光猝灭(非光化学猝灭的快速可逆成分)的能力降低。当在低温下暴露于强光下时,szl1植物显示出比野生型植物更强的光氧化作用。来自szl1的PSI和PSII的胡萝卜素含量也类似减少,但是PSI的光抑制作用比PSII更为敏感,这表明PSI的光抑制作用更强,并且从szl1的分离的PSI光捕获复合物I络合物中释放单线态氧的速率增加与野生型。我们得出结论,核心复合物中的胡萝卜素耗竭会损害两种PS在冷光下在强光下的光保护,其中PSI的影响远大于PSII。

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