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光捕获复合物2中从b800到b850的多发色团荧光共振能量转移:紫色细菌精细能量优化的证据

Multichromophoric Förster resonance energy transfer from b800 to b850 in the light harvesting complex 2: evidence for subtle energetic optimization by purple bacteria.

作者信息

Jang Seogjoo, Newton Marshall D, Silbey Robert J

机构信息

Department of Chemistry and Biochemistry, Queens College of the City University of New York, 65-30 Kissena Boulevard, Flushing, New York 11367-1597, USA.

出版信息

J Phys Chem B. 2007 Jun 21;111(24):6807-14. doi: 10.1021/jp070111l. Epub 2007 Apr 17.

DOI:10.1021/jp070111l
PMID:17439170
Abstract

This work provides a detailed account of the application of our multichromophoric Förster resonance energy transfer (MC-FRET) theory (Phys. Rev. Lett. 2004, 92, 218301) for the calculation of the energy transfer rate from the B800 unit to the B850 unit in the light harvesting complex 2 (LH2) of purple bacteria. The model Hamiltonian consists of the B800 unit represented by a single bacteriochlorophyll (BChl), the B850 unit represented by its entire set of BChls, the electronic coupling between the two units, and the bath terms representing all environmental degrees of freedom. The model parameters are determined, independent of the rate calculation, from the literature data and by a fitting to an ensemble line shape. Comparing our theoretical rate and a low-temperature experimental rate, we estimate the magnitude of the BChl-Qy transition dipole to be in the range of 6.5-7.5 D, assuming that the optical dielectric constant of the medium is in the range of 1.5-2. We examine how the bias of the average excitation energy of the B800-BChl relative to that of the B850-BChl affects the energy transfer time by calculating the transfer rates based on both our MC-FRET theory and the original FRET theory, varying the value of the bias. Within our model, we find that the value of bias 260 cm-1, which we determine from the fitting to an ensemble line shape, is very close to the value at which the ratio between MC-FRET and FRET rates is a maximum. This provides evidence that the bacterial system utilizes the quantum mechanical coherence among the multiple chromophores within the B850 in a constructive way so as to achieve efficient energy transfer from B800 to B850.

摘要

这项工作详细阐述了我们的多发色团Förster共振能量转移(MC-FRET)理论(《物理评论快报》2004年,第92卷,218301页)在计算紫细菌光捕获复合物2(LH2)中从B800单元到B850单元的能量转移速率方面的应用。模型哈密顿量由单个细菌叶绿素(BChl)代表的B800单元、其整套BChls代表的B850单元、两个单元之间的电子耦合以及代表所有环境自由度的浴项组成。模型参数是根据文献数据并通过拟合总体线形来确定的,与速率计算无关。将我们的理论速率与低温实验速率进行比较,假设介质的光学介电常数在1.5 - 2范围内,我们估计BChl - Qy跃迁偶极矩的大小在6.5 - 7.5 D范围内。我们通过基于我们的MC-FRET理论和原始FRET理论计算转移速率,改变偏差值,来研究B800 - BChl的平均激发能量相对于B850 - BChl的平均激发能量的偏差如何影响能量转移时间。在我们的模型中,我们发现从拟合总体线形确定的偏差值260 cm⁻¹非常接近MC-FRET与FRET速率之比最大时的值。这提供了证据,表明细菌系统以建设性的方式利用B850内多个发色团之间的量子力学相干性,从而实现从B800到B850的高效能量转移。

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