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Comparative Analysis of Light-Harvesting Antennae and State Transition in chlorina and cpSRP Mutants

机译:叶绿素和cpSRP突变体的光收集天线和状态转变的比较分析

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摘要

State transitions in photosynthesis provide for the dynamic allocation of a mobile fraction of light-harvesting complex II (LHCII) to photosystem II (PSII) in state I and to photosystem I (PSI) in state II. In the state I-to-state II transition, LHCII is phosphorylated by STN7 and associates with PSI to favor absorption cross-section of PSI. Here, we used Arabidopsis (Arabidopsis thaliana) mutants with defects in chlorophyll () b biosynthesis or in the chloroplast signal recognition particle () machinery to study the flexible formation of PS- supercomplexes. Intriguingly, we found that impaired b biosynthesis in chlorina1-2 (ch1-2) led to preferentially stabilized LHCI rather than LHCII, while the contents of both LHCI and LHCII were equally depressed in the 43-deficient mutant (chaos). In view of recent findings on the modified state transitions in LHCI-deficient mutants (), the ch1-2 and chaos mutants were used to assess the influence of varying LHCI/LHCII antenna size on state transitions. Under state II conditions, LHCII-PSI supercomplexes were not formed in both ch1-2 and chaos plants. LHCII phosphorylation was drastically reduced in ch1-2, and the inactivation of STN7 correlates with the lack of state transitions. In contrast, phosphorylated LHCII in chaos was observed to be exclusively associated with PSII complexes, indicating a lack of mobile LHCII in chaos. Thus, the comparative analysis of ch1-2 and chaos mutants provides new evidence for the flexible organization of and enhances our understanding of the reversible allocation of LHCII to the two photosystems.
机译:光合作用中的状态转换为状态I中的光系统II(PSII)和状态II中的光系统I(PSI)动态分配了光收集复合体II(LHCII)的移动部分。在状态I到状态II的过渡过程中,LHCII被STN7磷酸化,并与PSI缔合以促进PSI的吸收截面。在这里,我们使用了在叶绿素(b)生物合成或叶绿体信号识别颗粒()机械中存在缺陷的拟南芥(Arabidopsis thaliana)突变体来研究PS超复合物的柔性形成。有趣的是,我们发现在chlorina1-2(ch1-2)中b生物合成受损导致优先稳定的LHCI而不是LHCII,而在43缺陷突变体(混乱)中LHCI和LHCII的含量均降低。鉴于最近对LHCI缺陷型突变体的修饰状态转变的发现,使用ch1-2和chaos突变体评估LHCI / LHCII天线尺寸变化对状态转变的影响。在状态II条件下,ch1-2和混乱工厂均未形成LHCII-PSI超复合物。 ch1-2中,LHCII的磷酸化程度显着降低,而STN7的失活与状态转换的缺乏相关。相反,观察到混乱中的磷酸化LHCII仅与PSII复合物相关,表明在混乱中缺乏可移动的LHCII。因此,对ch1-2和混沌突变体的比较分析为灵活组织LHCII为两个光系统可逆分配提供了新的证据,并加深了我们的理解。

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