首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Structure of a PSI–LHCI–cyt b6f supercomplex in Chlamydomonas reinhardtii promoting cyclic electron flow under anaerobic conditions
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Structure of a PSI–LHCI–cyt b6f supercomplex in Chlamydomonas reinhardtii promoting cyclic electron flow under anaerobic conditions

机译:莱茵衣藻中PSI–LHCI–cyt b6f超复合物的结构在厌氧条件下促进循环电子流

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摘要

Photosynthetic linear electron flow (LEF) produces ATP and NADPH, while cyclic electron flow (CEF) exclusively drives photophosphorylation to supply extra ATP. The fine-tuning of linear and cyclic electron transport levels allows photosynthetic organisms to balance light energy absorption with cellular energy requirements under constantly changing light conditions. As LEF and CEF share many electron transfer components, a key question is how the same individual structural units contribute to these two different functional modes. Here, we report the structural identification of a photosystem I (PSI)–light harvesting complex I (LHCI)–cytochrome (cyt) b6f supercomplex isolated from the unicellular alga Chlamydomonas reinhardtii under anaerobic conditions, which induces CEF. This provides strong evidence for the model that enhanced CEF is induced by the formation of CEF supercomplexes, when stromal electron carriers are reduced, to generate additional ATP. The additional identification of PSI–LHCI–LHCII complexes is consistent with recent findings that both CEF enhancement and state transitions are triggered by similar conditions, but can occur independently from each other. Single molecule fluorescence correlation spectroscopy indicates a physical association between cyt b6f and fluorescent chlorophyll containing PSI–LHCI supercomplexes. Single particle analysis identified top-view projections of the corresponding PSI–LHCI–cyt b6f supercomplex. Based on molecular modeling and mass spectrometry analyses, we propose a model in which dissociation of LHCA2 and LHCA9 from PSI supports the formation of this CEF supercomplex. This is supported by the finding that a Δlhca2 knockout mutant has constitutively enhanced CEF.
机译:光合线性电子流(LEF)产生ATP和NADPH,而循环电子流(CEF)专门驱动光磷酸化以提供额外的ATP。线性和循环电子传输能级的微调使光合生物能够在不断变化的光照条件下平衡光能吸收与细胞能量需求。由于LEF和CEF共享许多电子转移成分,一个关键问题是相同的单个结构单元如何对这两种不同的功能模式起作用。在这里,我们报道了在厌氧条件下从诱导CEF的单细胞藻类莱茵衣藻分离出的光系统I(PSI)-光捕获复合体I(LHCI)-细胞色素(cyt)b6f超复合物的结构鉴定。这为该模型提供了有力的证据,即当基质电子载流子减少以生成额外的ATP时,CEF超复合物的形成会诱导增强的CEF。对PSI-LHCI-LHCII复合物的额外鉴定与最近的发现一致,即CEF增强和状态转变均由相似条件触发,但可以彼此独立发生。单分子荧光相关光谱表明cyt b6f和含有PSI–LHCI超复合物的荧光叶绿素之间存在物理联系。单颗粒分析确定了相应的PSI–LHCI–cyt b6f超复合物的俯视图。基于分子建模和质谱分析,我们提出了一个模型,其中LHCA2和LHCA9从PSI的解离支持了这种CEF超复合物的形成。这由以下发现支持:Δlhca2敲除突变体具有组成性增强的CEF。

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