Seki Soichiro, Miyata Tomoko, Norioka Naoko, Tanaka Hideaki, Kurisu Genji, Namba Keiichi, Fujii Ritsuko
Graduate School of Science, Osaka City University, 3-3-138 Sugimoto, Sumiyoshi-ku, Osaka 558-8585, Japan.
Institute for Protein Research, Osaka University, Suita, Osaka 565-0871, Japan.
PNAS Nexus. 2024 Sep 25;3(9):pgae405. doi: 10.1093/pnasnexus/pgae405. eCollection 2024 Sep.
Light-harvesting complex II (LHCII) captures sunlight and dissipates excess energy to drive photosynthesis. To elucidate this mechanism, the individual optical properties of pigments in the LHCII protein must be identified. In vitro reconstitution with apoproteins synthesized by and pigment-lipid mixtures from natural sources is an effective approach; however, the local environment surrounding each pigment within reconstituted LHCII (rLHCII) has only been indirectly estimated using spectroscopic and biochemical methods. Here, we used cryo-electron microscopy to determine the 3D structure of the rLHCII trimer and found that rLHCII exhibited a structure that was virtually identical to that of native LHCII, with a few exceptions: some C-terminal amino acids were not visible, likely due to aggregation of the His-tags; a carotenoid at the V1 site was not visible; and at site 614 showed mixed occupancy by both chlorophyll and molecules. Our observations confirmed the applicability of the in vitro reconstitution technique.
捕光复合体II(LHCII)捕获阳光并耗散多余能量以驱动光合作用。为阐明这一机制,必须确定LHCII蛋白中色素的个体光学性质。用体外合成的脱辅基蛋白和天然来源的色素-脂质混合物进行体外重建是一种有效的方法;然而,使用光谱和生化方法仅间接估计了重建的LHCII(rLHCII)中每种色素周围的局部环境。在这里,我们使用冷冻电子显微镜确定了rLHCII三聚体的三维结构,发现rLHCII呈现出与天然LHCII几乎相同的结构,但有一些例外:一些C末端氨基酸不可见,可能是由于His标签的聚集;V1位点的类胡萝卜素不可见;并且在614位点显示叶绿素a和b分子的混合占据。我们的观察结果证实了体外重建技术的适用性。