Oda Ippei, Hirata Kotaro, Watanabe Syoko, Shibata Yutaka, Kajino Tsutomu, Fukushima Yoshiaki, Iwai Satoshi, Itoh Shigeru
Division of Material Science, Graduate School of Science, Nagoya University, Furo-cho, Chikusa-ku Nagoya, Aichi 464-8602 Japan.
J Phys Chem B. 2006 Jan 26;110(3):1114-20. doi: 10.1021/jp0540860.
A high amount of functional membrane protein complex was introduced into a folded-sheet silica mesoporous material (FSM) that has nanometer-size pores of honeycomb-like hexagonal cylindrical structure inside. The photosynthetic light-harvesting complex LH2, which is a typical membrane protein, has a cylindrical structure of 7.3 nm diameter and contains 27 bacteriochlorophyll a and nine carotenoid molecules. The complex captures light energy in the anoxygenic thermophilic purple photosynthetic bacterium Thermochromatium tepidum. The amount of LH2 adsorbed to FSM was determined optically and by the adsorption isotherms of N2. The FSM compounds with internal pore diameters of 7.9 and 2.7 nm adsorbed LH2 at 1.11 and 0.24 mg/mg FSM, respectively, suggesting the high specific affinity of LH2 to the interior of the hydrophobic nanopores with a diameter of 7.9 nm. The LH2 adsorbed to FSM showed almost intact absorption bands of bacteriochlorophylls, and was fully active in the capture and transfer of excitation energy. The LH2 complex inside the FSM showed increased heat stability of the exciton-type absorption band of bacteriochlorophylls (B850), suggesting higher circular symmetry. The environment inside the hydrophobic silica nanopores can be a new matrix for the membrane proteins to reveal their functions. The silica-membrane protein adduct will be useful for the construction of new probes and reaction systems.
大量功能性膜蛋白复合物被引入到一种折叠片状二氧化硅介孔材料(FSM)中,该材料内部具有蜂窝状六方柱状结构的纳米级孔隙。光合捕光复合物LH2是一种典型的膜蛋白,具有直径7.3nm的柱状结构,包含27个细菌叶绿素a和9个类胡萝卜素分子。该复合物在嗜热无氧紫色光合细菌嗜热栖热菌中捕获光能。通过光学方法和N2吸附等温线测定了吸附到FSM上的LH2的量。内径为7.9nm和2.7nm的FSM化合物分别以1.11mg/mg FSM和0.24mg/mg FSM的量吸附LH2,这表明LH2对直径为7.9nm的疏水纳米孔内部具有高特异性亲和力。吸附到FSM上的LH2显示出细菌叶绿素几乎完整的吸收带,并且在激发能的捕获和转移方面完全活跃。FSM内部的LH2复合物显示出细菌叶绿素(B850)激子型吸收带的热稳定性增加,表明具有更高的圆对称性。疏水二氧化硅纳米孔内部的环境可以成为膜蛋白发挥其功能的新基质。二氧化硅 - 膜蛋白加合物将有助于构建新的探针和反应体系。