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通过福斯特共振能量转移实现不同分离的光合光捕获复合物与CdSe/ZnS纳米晶体的耦合。

Coupling of different isolated photosynthetic light harvesting complexes and CdSe/ZnS nanocrystals via Förster resonance energy transfer.

作者信息

Schmitt F-J, Maksimov E G, Hätti P, Weißenborn J, Jeyasangar V, Razjivin A P, Paschenko V Z, Friedrich T, Renger G

机构信息

Institute of Chemistry, Biophysical Chemistry, Berlin Institute of Technology, Berlin, Germany.

出版信息

Biochim Biophys Acta. 2012 Aug;1817(8):1461-70. doi: 10.1016/j.bbabio.2012.03.030. Epub 2012 Apr 4.

Abstract

The present work describes results obtained on hybrid systems formed in aqueous buffer solution by self-assembly of different CdSe quantum dots (QDs) surrounded by a ZnS shell and functionalized by covering the surface with anionic and cationic groups and various isolated pigment-protein complexes from the light-harvesting antennae of photosynthetic organisms (light-harvesting complexes 1 and 2 (LH1 and LH2, respectively) from purple bacteria, phycobiliproteins (PBPs) from cyanobacteria and the rod-shaped PBP from the cyanobacterium Acaryochloris marina). Excitation energy transfer (EET) from QDs to PBP rods was found to take place with varying and highly temperature-dependent efficiencies of up to 90%. Experiments performed at room temperature on hybrid systems with different QDs show that no straightforward correlation exists between the efficiency of EET and the parameter J/(R(12)(6)) given by the theory of Förster resonance energy transfer (FRET), where J is the overlap integral of the normalized QD emission and PBP absorption and R(12) the distance between the transition dipole moments of donor and acceptor. The results show that the hybrid systems cannot be described as randomly orientated aggregates consisting of QDs and photosynthetic pigment-protein complexes. Specific structural parameters are inferred to play an essential role. The mode of binding and coupling seems to change with the size of QDs and with temperature. Efficient EET and fluorescence enhancement of the acceptor was observed at particular stoichiometric ratios between QDs and trimeric phycoerythrin (PE). At higher concentrations of PE, a quenching of its fluorescence is observed in the presence of QDs. This effect is explained by the existence of additional quenching channels in aggregates formed within hybrid systems. This article is part of a Special Issue entitled: Photosynthesis Research for Sustainability: from Natural to Artificial.

摘要

本研究描述了在水缓冲溶液中通过自组装形成的混合体系的研究结果,该混合体系由不同的、被硫化锌壳层包围且通过用阴离子和阳离子基团覆盖表面进行功能化的硒化镉量子点(QDs),以及来自光合生物光捕获天线的各种分离的色素 - 蛋白质复合物(分别来自紫色细菌的光捕获复合物1和2(LH1和LH2)、来自蓝细菌的藻胆蛋白(PBPs)以及来自蓝细菌滨海栖热菌的杆状PBP)组成。发现从量子点到藻胆蛋白杆的激发能量转移(EET)以高达90%的不同且高度依赖温度的效率发生。在室温下对具有不同量子点的混合体系进行的实验表明,EET效率与福斯特共振能量转移(FRET)理论给出的参数J/(R(12)(6))之间不存在直接相关性,其中J是归一化量子点发射和藻胆蛋白吸收的重叠积分,R(12)是供体和受体跃迁偶极矩之间的距离。结果表明,混合体系不能被描述为由量子点和光合色素 - 蛋白质复合物组成的随机取向聚集体。推断特定的结构参数起着至关重要的作用。结合和耦合模式似乎随量子点的大小和温度而变化。在量子点与三聚体藻红蛋白(PE)之间特定的化学计量比下,观察到受体的高效EET和荧光增强。在较高浓度的PE下,在量子点存在的情况下观察到其荧光猝灭。这种效应可以通过混合体系中形成的聚集体中存在额外的猝灭通道来解释。本文是名为:可持续性光合作用研究:从天然到人工的特刊的一部分。

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