首页> 外文期刊>The Plant Cell >Functional analyses of the plant photosystem I-light-harvesting complex II supercomplex reveal that light-harvesting complex II loosely bound to photosystem II is a very efficient antenna for photosystem I in state II.
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Functional analyses of the plant photosystem I-light-harvesting complex II supercomplex reveal that light-harvesting complex II loosely bound to photosystem II is a very efficient antenna for photosystem I in state II.

机译:植物光系统I的光捕获复合物II超复合物的功能分析表明,与光系统II松散结合的光捕获复合物II是状态II中光系统I的非常有效的天线。

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摘要

State transitions are an important photosynthetic short-term response that allows energy distribution balancing between photosystems I (PSI) and II (PSII). In plants when PSII is preferentially excited compared with PSI (State II), part of the major light-harvesting complex LHCII migrates to PSI to form a PSI-LHCII supercomplex. So far, little is known about this complex, mainly due to purification problems. Here, a stable PSI-LHCII supercomplex is purified from Arabidopsis thaliana and maize (Zea mays) plants. It is demonstrated that LHCIIs loosely bound to PSII in State I are the trimers mainly involved in state transitions and become strongly bound to PSI in State II. Specific Lhcb1-3 isoforms are differently represented in the mobile LHCII compared with S and M trimers. Fluorescence analyses indicate that excitation energy migration from mobile LHCII to PSI is rapid and efficient, and the quantum yield of photochemical conversion of PSI-LHCII is substantially unaffected with respect to PSI, despite a sizable increase of the antenna size. An updated PSI-LHCII structural model suggests that the low-energy chlorophylls 611 and 612 in LHCII interact with the chlorophyll 11145 at the interface of PSI. In contrast with the common opinion, we suggest that the mobile pool of LHCII may be considered an intimate part of the PSI antenna system that is displaced to PSII in State I.
机译:状态转换是重要的光合作用短期响应,它允许在光系统I(PSI)和II(PSII)之间进行能量分配平衡。在植物中,与PSI(状态II)相比,PSII优先受激发,部分主要的光收集复合物LHCII迁移到PSI,形成PSI-LHCII超复合物。到目前为止,对该复合物知之甚少,主要是由于纯化问题。在这里,从拟南芥和玉米(Zea mays)植物中纯化了稳定的PSI-LHCII超复合物。事实证明,LHCII在状态I中与PSII松散结合,是主要参与状态转换的三聚体,在状态II中与PSI牢固结合。与S和M三聚体相比,特定的Lhcb1-3同工型在流动LHCII中的表达方式有所不同。荧光分析表明,激发能从移动LHCII迁移到PSI是快速有效的,并且PSI-LHCII的光化学转化的量子产率相对于PSI基本上不受影响,尽管天线尺寸大大增加。更新的PSI-LHCII结构模型表明,LHCII中的低能叶绿素611和612与PSI界面处的叶绿素11145相互作用。与普遍观点相反,我们建议将LHCII的移动池视为PSI天线系统的紧密部分,该状态在状态I中已转移到PSII。

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