首页> 外文OA文献 >An NMR comparison of the light-harvesting complex II (LHCII) in active and photoprotective states reveals subtle changes in the chlorophyll a ground-state electronic structures.
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An NMR comparison of the light-harvesting complex II (LHCII) in active and photoprotective states reveals subtle changes in the chlorophyll a ground-state electronic structures.

机译:处于活性和光保护状态的光捕获复合物II(LHCII)的NMR比较显示叶绿素和基态电子结构发生了细微变化。

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摘要

To protect the photosynthetic apparatus against photo-damage in high sunlight, the photosynthetic antenna of oxygenic organisms can switch from a light-harvesting to a photoprotective mode through the process of non-photochemical quenching (NPQ). There is growing evidence that light-harvesting proteins of photosystem II participate in photoprotection by a built-in capacity to switch their conformation between light-harvesting and energy-dissipating states. Here we applied high-resolution Magic-Angle Spinning Nuclear Magnetic Resonance on uniformly (13)C-enriched major light-harvesting complex II (LHCII) of Chlamydomonas reinhardtii in active or quenched states. Our results reveal that the switch into a dissipative state is accompanied by subtle changes in the chlorophyll (Chl) a ground-state electronic structures that affect their NMR responses, particularly for the macrocycle (13)C4, (13)C5 and (13)C6 carbon atoms. Inspection of the LHCII X-ray structures shows that of the Chl molecules in the terminal emitter domain, where excited-state energy accumulates prior to further transfer or dissipation, the C4, 5 and 6 atoms are in closest proximity to lutein; supporting quenching mechanisms that involve altered Chl-lutein interactions in the dissipative state. In addition the observed changes could represent altered interactions between Chla and neoxanthin, which alters its configuration under NPQ conditions. The Chls appear to have increased dynamics in unquenched, detergent-solubilized LHCII. Our work demonstrates that solid-state Nuclear Magnetic Resonance is applicable to investigate high-resolution structural details of light-harvesting proteins in varied functional conditions, and represents a valuable tool to address their molecular plasticity associated with photoprotection.
机译:为了保护光合作用设备免受强光照射的损害,含氧生物的光合作用天线可以通过非光化学猝灭(NPQ)过程从光收集模式切换到光保护模式。越来越多的证据表明,光系统II的光收集蛋白通过内置的能力在光收集和耗能状态之间切换其构象而参与了光保护。在这里,我们在活动状态或淬灭状态下对莱茵衣藻的均匀(13)C富集的主要光捕获复合体II(LHCII)应用了高分辨率的魔角旋转核磁共振。我们的结果表明,向耗散状态的转换伴随着叶绿素(Chl)的细微变化,这些基态电子结构会影响其NMR反应,特别是对于大环(13)C4,(13)C5和(13) C6碳原子。对LHCII X射线结构的检查表明,在末端发射域中的Chl分子中,激发态能量在进一步转移或耗散之前积累,其中C4、5和6原子最接近叶黄素。支持在耗散状态下涉及改变Chl-叶黄素相互作用的淬灭机制。此外,观察到的变化可能表示Chla与新黄质之间的相互作用发生了改变,这改变了其在NPQ条件下的构型。在未淬灭,去污剂溶解的LHCII中,Chls的动力学似乎增强了。我们的工作表明,固态核磁共振技术可用于研究各种功能条件下光捕获蛋白的高分辨率结构细节,并且是解决与光保护相关的分子可塑性的宝贵工具。

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