Photosynthesis Research Center, Key Laboratory of Photobiology, Institute of Botany, Chinese Academy of Sciences, Beijing, 100093, China.
Key Laboratory of Plant Resources/Beijing Botanical Garden, Institute of Botany, the Chinese Academy of Sciences, Beijing, 100093, China.
Plant J. 2020 Dec;104(6):1724-1735. doi: 10.1111/tpj.15033. Epub 2020 Nov 10.
Neoxanthin (Neo), which is only bound to the peripheral antenna proteins of photosystem (PS) II, is a conserved carotenoid in all green plants. It has been demonstrated that Neo plays an important role in photoprotection and its deficiency fails to impact LHCII stability in vitro and indoor plant growth in vivo. Whether Neo is involved in maintaining the PSII complex structure or adaptive mechanisms for the everchanging environment has not yet been elucidated. In this study, the role of Neo in maintaining the structure and function of the PSII-LHCII supercomplexes was studied using Neo deficient Arabidopsis mutants. Our results show that Neo deficiency had little effect on the electron transport capacity and the plant fitness, but the PSII-LHCII supercomplexes were significantly impacted by the lack of Neo. In the absence of Neo, the M-type LHCII trimer cannot effectively associate with the C S -type PSII-LHCII supercomplexes even in moderate light conditions. Interestingly, Neo deficiency also leads to decreased PSII protein phosphorylation but rapid transition from state 1 to state 2. We suggest that Neo might enforce the interactions between LHCII and the minor antennas and that the absence of Neo makes M-type LHCII disassociate from the PSII complex, leading to the disassembly of the PSII-LHCII C S M supercomplexes, which results in alterations in the phosphorylation patterns of the thylakoid photosynthetic proteins and the kinetics of state transition.
玉米黄质(Neo)仅与光系统 II(PS)的外围天线蛋白结合,是所有绿色植物中保守的类胡萝卜素。已经证明 Neo 在光保护中起着重要作用,其缺乏不会影响 LHCII 在体外的稳定性和体内植物的生长。Neo 是否参与维持 PSII 复合物结构或适应不断变化的环境的适应机制尚未阐明。在这项研究中,使用缺乏 Neo 的拟南芥突变体研究了 Neo 在维持 PSII-LHCII 超复合物结构和功能中的作用。我们的结果表明,Neo 缺乏对电子传递能力和植物适应性几乎没有影响,但 PSII-LHCII 超复合物受到缺乏 Neo 的显著影响。在没有 Neo 的情况下,即使在中等光照条件下,M 型 LHCII 三聚体也不能有效地与 C S -型 PSII-LHCII 超复合物结合。有趣的是,Neo 缺乏也会导致 PSII 蛋白磷酸化减少,但从状态 1 到状态 2 的快速转变。我们认为 Neo 可能增强了 LHCII 与次要天线之间的相互作用,而 Neo 的缺乏使 M 型 LHCII 从 PSII 复合物中解离,导致 PSII-LHCII C S M 超复合物的解体,从而改变类囊体光合蛋白的磷酸化模式和状态转变的动力学。