Relationship between non-photochemical quenching efficiency and the energy transfer rate from phycobilisomes to photosystem II.

IF 2.9 3区 生物学 Q2 PLANT SCIENCES Photosynthesis Research Pub Date : 2024-03-01 Epub Date: 2023-06-16 DOI:10.1007/s11120-023-01031-z
Igor N Stadnichuk, Pavel M Krasilnikov
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Abstract

The chromophorylated PBLcm domain of the ApcE linker protein in the cyanobacterial phycobilisome (PBS) serves as a bottleneck for Förster resonance energy transfer (FRET) from the PBS to the antennal chlorophyll of photosystem II (PS II) and as a redirection point for energy distribution to the orange protein ketocarotenoid (OCP), which is excitonically coupled to the PBLcm chromophore in the process of non-photochemical quenching (NPQ) under high light conditions. The involvement of PBLcm in the quenching process was first directly demonstrated by measuring steady-state fluorescence spectra of cyanobacterial cells at different stages of NPQ development. The time required to transfer energy from the PBLcm to the OCP is several times shorter than the time it takes to transfer energy from the PBLcm to the PS II, ensuring quenching efficiency. The data obtained provide an explanation for the different rates of PBS quenching in vivo and in vitro according to the half ratio of OCP/PBS in the cyanobacterial cell, which is tens of times lower than that realized for an effective NPQ process in solution.

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非光化学淬灭效率与藻体到光系统 II 的能量传递率之间的关系
蓝藻藻体(PBS)中ApcE连接蛋白的发色团PBLcm结构域是光系统II(PS II)中从PBS到触角叶绿素的佛斯特共振能量转移(FRET)的瓶颈,也是向橙色蛋白酮类胡萝卜素(OCP)分配能量的重定向点、在强光条件下的非光化学淬灭(NPQ)过程中,OCP 与 PBLcm 发色团发生激子耦合。通过测量蓝藻细胞在 NPQ 不同发展阶段的稳态荧光光谱,首次直接证明了 PBLcm 参与了淬灭过程。从 PBLcm 向 OCP 转移能量所需的时间比从 PBLcm 向 PS II 转移能量所需的时间短数倍,从而确保了淬灭效率。根据蓝藻细胞中 OCP/PBS 的半数比率(比溶液中有效 NPQ 过程的半数比率低数十倍),所获得的数据为体内和体外 PBS 不同的淬灭速率提供了解释。
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来源期刊
Photosynthesis Research
Photosynthesis Research 生物-植物科学
CiteScore
6.90
自引率
8.10%
发文量
91
审稿时长
4.5 months
期刊介绍: Photosynthesis Research is an international journal open to papers of merit dealing with both basic and applied aspects of photosynthesis. It covers all aspects of photosynthesis research, including, but not limited to, light absorption and emission, excitation energy transfer, primary photochemistry, model systems, membrane components, protein complexes, electron transport, photophosphorylation, carbon assimilation, regulatory phenomena, molecular biology, environmental and ecological aspects, photorespiration, and bacterial and algal photosynthesis.
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