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Deg1 缺失型拟南芥植株中光系统 II 的电子传递变化及异质性分析

Analysis of the changes of electron transfer and heterogeneity of photosystem II in Deg1-reduced Arabidopsis plants.

作者信息

Wen Xiaogang, Yang Zhipan, Ding Shunhua, Yang Huixia, Zhang Lixin, Lu Congming, Lu Qingtao

机构信息

Photosynthesis Research Center, Key Laboratory of Photobiology, Institute of Botany, Chinese Academy of Sciences, Beijing, 100093, China.

Innovative Academy of Seed Design, Chinese Academy of Sciences, Beijing, 100093, China.

出版信息

Photosynth Res. 2021 Dec;150(1-3):159-177. doi: 10.1007/s11120-021-00842-2. Epub 2021 May 16.

Abstract

Deg1 protease functions in protease and chaperone of PSII complex components, but few works were performed to study the effects of Deg1 on electron transport activities on the donor and acceptor side of PSII and its correlation with the photoprotection of PSII during photoinhibition. Therefore, we performed systematic and comprehensive investigations of electron transfers on the donor and acceptor sides of photosystem II (PSII) in the Deg1-reduced transgenic lines deg1-2 and deg1-4. Both the maximal quantum efficiency of PSII photochemistry (F/F) and the actual PSII efficiency (Φ) decreased significantly in the transgenic plants. Increases in nonphotochemical quenching (NPQ) and the dissipated energy flux per reaction center (DI/RC) were also shown in the transgenic plants. Along with the decreased D1, CP47, and CP43 content, these results suggested photoinhibition under growth light conditions in transgenic plants. Decreased Deg1 caused inhibition of electron transfer on the PSII reducing side, leading to a decline in the number of Q-reducing centers and accumulation of Q-nonreducing centers. The Tm of the Q band shifted from 5.7 °C in the wild-type plant to 10.4 °C and 14.2 °C in the deg1-2 and deg1-4 plants, respectively, indicating an increase in the stability of SQ in transgenic plants. PSIIα in the transgenic plants largely reduced, while PSIIβ and PSIIγ increased with the decline in the Deg1 levels in transgenic plants suggesting PSIIα centers gradually converted into PSIIβ and PSIIγ centers in the transgenic plants. Besides, the connectivity of PSIIα and PSIIβ was downregulated in transgenic plants. Our results reveal that downregulation of Deg1 protein levels induced photoinhibition in transgenic plants, leading to loss of PSII activities on both the donor and acceptor sides in transgenic plants. These results give a new insight into the regulation role of Deg1 in PSII electron transport.

摘要

Deg1蛋白酶在光系统II(PSII)复合物组分的蛋白酶和伴侣功能中发挥作用,但很少有研究探讨Deg1对PSII供体侧和受体侧电子传递活性的影响,以及其与光抑制期间PSII光保护的相关性。因此,我们对Deg1基因表达降低的转基因株系deg1 - 2和deg1 - 4中光系统II(PSII)供体侧和受体侧的电子传递进行了系统而全面的研究。转基因植物中PSII光化学的最大量子效率(F/F)和实际PSII效率(Φ)均显著降低。转基因植物中还表现出非光化学猝灭(NPQ)和每个反应中心的耗散能量通量(DI/RC)增加。随着D1、CP47和CP43含量的降低,这些结果表明转基因植物在生长光条件下发生了光抑制。Deg1的降低导致PSII还原侧的电子传递受到抑制,导致Q-还原中心数量减少和Q-非还原中心积累。Q带的Tm值从野生型植物中的5.7°C分别转变为deg1 - 2和deg1 - 4植物中的10.4°C和14.2°C,表明转基因植物中稳定态Q(SQ)的稳定性增加。转基因植物中的PSIIα大幅减少,而PSIIβ和PSIIγ随着转基因植物中Deg1水平的下降而增加,这表明转基因植物中PSIIα中心逐渐转化为PSIIβ和PSIIγ中心。此外,转基因植物中PSIIα和PSIIβ的连接性下调。我们的结果表明,Deg1蛋白水平的下调诱导了转基因植物中的光抑制,导致转基因植物中PSII供体侧和受体侧的活性丧失。这些结果为Deg1在PSII电子传递中的调节作用提供了新的见解。

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