Center for Nano Science and Technology@PoliMi, Istituto Italiano di Tecnologia, 20133 Milan, Italy.
Dipartimento di Biotecnologie, Università di Verona, Strada Le Grazie 15, 37134 Verona, Italy.
J Chem Phys. 2022 May 28;156(20):205101. doi: 10.1063/5.0087898.
CP29, a chlorophyll a/b-xanthophyll binding protein, bridges energy transfer between the major LHCII antenna complexes and photosystem II reaction centers. It hosts one of the two identified quenching sites, making it crucial for regulated photoprotection mechanisms. Until now, the photophysics of CP29 has been studied on the purified protein in detergent solutions since spectrally overlapping signals affect in vivo measurements. However, the protein in detergent assumes non-native conformations compared to its physiological state in the thylakoid membrane. Here, we report a detailed photophysical study on CP29 inserted in discoidal lipid bilayers, known as nanodiscs, which mimic the native membrane environment. Using picosecond time-resolved fluorescence and femtosecond transient absorption (TA), we observed shortening of the Chl fluorescence lifetime with a decrease of the carotenoid triplet formation yield for CP29 in nanodiscs as compared to the protein in detergent. Global analysis of TA data suggests a Chl* quenching mechanism dependent on excitation energy transfer to a carotenoid dark state, likely the proposed S*, which is believed to be formed due to a carotenoid conformational change affecting the S state. We suggest that the accessibility of the S* state in different local environments plays a key role in determining the quenching of Chl excited states. In vivo, non-photochemical quenching is activated by de-epoxidation of violaxanthin into zeaxanthin. CP29-zeaxanthin in nanodiscs further shortens the Chl lifetime, which underlines the critical role of zeaxanthin in modulating photoprotection activity.
CP29 是叶绿素 a/b-叶黄素结合蛋白,连接着主要 LHCII 天线复合物与光系统 II 反应中心之间的能量转移。它包含两个已确定的猝灭位点之一,因此对调节光保护机制至关重要。到目前为止,由于光谱重叠信号会影响体内测量,CP29 的光物理性质一直是在去污剂溶液中对纯化蛋白进行研究的。然而,与在类囊体膜中的生理状态相比,去污剂中的蛋白质会采取非天然构象。在这里,我们报告了一项关于 CP29 在盘状脂质双层(称为纳米盘)中插入的详细光物理研究,纳米盘可以模拟天然膜环境。使用皮秒时间分辨荧光和飞秒瞬态吸收(TA),我们观察到 CP29 在纳米盘中的 Chl 荧光寿命缩短,并且类胡萝卜素三重态形成产率降低,与去污剂中的蛋白质相比。TA 数据的全局分析表明,Chl猝灭机制依赖于激发能量转移到类胡萝卜素暗态,可能是拟议的 S,据信由于影响 S 态的类胡萝卜素构象变化而形成。我们认为,不同局部环境中 S*状态的可及性在确定 Chl 激发态猝灭方面起着关键作用。在体内,非光化学猝灭通过紫黄质向玉米黄质的去环氧化作用激活。CP29-玉米黄质在纳米盘中进一步缩短了 Chl 的寿命,这突显了玉米黄质在调节光保护活性方面的关键作用。