基于Förster理论的电子能量传递速率的相对贡献估计:以c -藻蓝蛋白发色团为例。

Biophysics and Physicobiology Pub Date : 2021-07-30 eCollection Date: 2021-01-01 DOI:10.2142/biophysico.bppb-v18.021
Kenji Mishima, Mitsuo Shoji, Yasufumi Umena, Mauro Boero, Yasuteru Shigeta
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引用次数: 2

摘要

在本研究中,我们对Förster最初提出的理论进行了重新表述,该理论允许使用简单方便的公式来估计供体和受体的跃迁偶极矩(化学因素),它们的取向因素(分子间结构因素),分子间中心到中心距离(分子间结构因素),吸收和发射光谱重叠(光物理因素),折射率(材料因子)与激发能传递(EET)速率常数。为了验证它们的有效性,我们重点研究了c -藻蓝蛋白(C-PC)发色团中的EET。为此,我们利用量子化学计算在密度泛函理论(DFT)框架内得到了C-PC发色团的优化分子结构。利用时变离散傅立叶变换(TDDFT)计算了吸收光谱和发射光谱以及跃迁偶极矩。我们的方法应用于几种类型的c - pc,表明EET速率是由其特定的物理,化学和几何特征的相互作用决定的。这些结果表明,我们的公式可以成为可靠估计调节EET转移速率的因素的相对贡献的有用工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Estimation of the relative contributions to the electronic energy transfer rates based on Förster theory: The case of C-phycocyanin chromophores.

Estimation of the relative contributions to the electronic energy transfer rates based on Förster theory: The case of C-phycocyanin chromophores.

Estimation of the relative contributions to the electronic energy transfer rates based on Förster theory: The case of C-phycocyanin chromophores.

Estimation of the relative contributions to the electronic energy transfer rates based on Förster theory: The case of C-phycocyanin chromophores.

In the present study, we provide a reformulation of the theory originally proposed by Förster which allows for simple and convenient formulas useful to estimate the relative contributions of transition dipole moments of a donor and acceptor (chemical factors), their orientation factors (intermolecular structural factors), intermolecular center-to-center distances (intermolecular structural factors), spectral overlaps of absorption and emission spectra (photophysical factors), and refractive index (material factor) to the excitation energy transfer (EET) rate constant. To benchmark their validity, we focused on the EET occurring in C-phycocyanin (C-PC) chromophores. To this aim, we resorted to quantum chemistry calculations to get optimized molecular structures of the C-PC chromophores within the density functional theory (DFT) framework. The absorption and emission spectra, as well as transition dipole moments, were computed by using the time-dependent DFT (TDDFT). Our method was applied to several types of C-PCs showing that the EET rates are determined by an interplay of their specific physical, chemical, and geometrical features. These results show that our formulas can become a useful tool for a reliable estimation of the relative contributions of the factors regulating the EET transfer rate.

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