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在组装于六聚体血红素蛋白支架中的多个光敏剂内的连续能量转移。

Successive energy transfer within multiple photosensitizers assembled in a hexameric hemoprotein scaffold.

作者信息

Mashima Tsuyoshi, Oohora Koji, Hayashi Takashi

机构信息

Department of Applied Chemistry, Graduate School of Engineering, Osaka University, Suita 565-0871, Japan.

出版信息

Phys Chem Chem Phys. 2018 Jan 31;20(5):3200-3209. doi: 10.1039/c7cp05257j.

Abstract

An assembly of multiple photosensitizers is demonstrated by development of a hexameric hemoprotein (HTHP) scaffold as a light harvesting model to replicate the successive energy transfer occuring within photosensitizer assemblies of natural systems. In our model, six zinc protoporphyrin IX (ZnPP) molecules are arrayed at the heme binding site of HTHP by supramolecular interactions and five fluorescein (Flu) molecules and one Texas Red (Tex) molecule as donor and acceptor photosensitizers, respectively, are attached to the HTHP protein surface with covalent linkages. The flow of excited energy from photoexcited Flu to Tex occurs via two pathways: direct energy transfer from Flu to Tex (path 1) and energy transfer via ZnPP (path 2). Steady state and time-resolved fluorescence measurements reveal that the energy transfer ratio of these pathways (path 1 : path 2) is 39 : 61. These findings indicate that the excited energy originating at five Flu and six ZnPP molecules is collected at one Tex molecule as a funnel-like bottom for light harvesting. The present system using the hexameric hemoprotein scaffold is a promising candidate for construction of an artificial light harvesting system having multiple photosensitizers to promote efficient use of solar energy.

摘要

通过开发一种六聚体血红蛋白(HTHP)支架作为光捕获模型,证明了多种光敏剂的组装,以复制自然系统中光敏剂组装体中发生的连续能量转移。在我们的模型中,六个锌原卟啉IX(ZnPP)分子通过超分子相互作用排列在HTHP的血红素结合位点,五个荧光素(Flu)分子和一个德克萨斯红(Tex)分子分别作为供体和受体光敏剂,通过共价键连接到HTHP蛋白质表面。激发能量从光激发的Flu流向Tex有两条途径:从Flu直接转移到Tex(途径1)和通过ZnPP的能量转移(途径2)。稳态和时间分辨荧光测量表明,这些途径的能量转移比(途径1∶途径2)为39∶61。这些发现表明,起源于五个Flu分子和六个ZnPP分子的激发能量在一个Tex分子处收集,作为光捕获的漏斗状底部。使用六聚体血红蛋白支架的本系统是构建具有多种光敏剂以促进太阳能高效利用的人工光捕获系统的有前途的候选者。

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