Damjanović Ana, Kosztin Ioan, Kleinekathöfer Ulrich, Schulten Klaus
Beckman Institute and Department of Physics, University of Illinois, Urbana, Illinois 61801, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2002 Mar;65(3 Pt 1):031919. doi: 10.1103/PhysRevE.65.031919. Epub 2002 Mar 6.
The dynamics of pigment-pigment and pigment-protein interactions in light-harvesting complexes is studied with an approach that combines molecular dynamics simulations with quantum chemistry calculations and a polaron model analysis. The molecular dynamics simulation of light-harvesting (LH) complexes was performed on an 87 055 atom system comprised of a LH-II complex of Rhodospirillum molischianum embedded in a lipid bilayer and surrounded with appropriate water layers. For each of the 16 B850 bacteriochlorophylls (BChls), we performed 400 ab initio quantum chemistry calculations on geometries that emerged from the molecular dynamical simulations, determining the fluctuations of pigment excitation energies as a function of time. From the results of these calculations we construct a time-dependent Hamiltonian of the B850 exciton system from which we determine within linear response theory the absorption spectrum. Finally, a polaron model is introduced to describe both the excitonic and coupled phonon degrees of freedom by quantum mechanics. The exciton-phonon coupling that enters into the polaron model, and the corresponding phonon spectral function, are derived from the molecular dynamics and quantum chemistry simulations. The model predicts that excitons in the B850 BChl ring are delocalized over five pigments at room temperature. Also, the polaron model permits the calculation of the absorption and circular dichroism spectra of the B850 excitons from the sole knowledge of the autocorrelation function of the excitation energies of individual BChls, which is readily available from the combined molecular dynamics and quantum chemistry simulations. The obtained results are found to be in good agreement with the experimentally measured absorption and circular dichroism spectra.
采用将分子动力学模拟与量子化学计算以及极化子模型分析相结合的方法,研究了光捕获复合物中色素 - 色素和色素 - 蛋白质相互作用的动力学。光捕获(LH)复合物的分子动力学模拟是在一个由嵌入脂质双层并被适当水层包围的嗜糖红螺菌LH-II复合物组成的87055原子系统上进行的。对于16个B850细菌叶绿素(BChls)中的每一个,我们对分子动力学模拟中出现的几何结构进行了400次从头算量子化学计算,确定了色素激发能随时间的波动。根据这些计算结果,我们构建了B850激子系统的含时哈密顿量,并根据线性响应理论从中确定吸收光谱。最后,引入极化子模型,通过量子力学描述激子和耦合声子的自由度。进入极化子模型的激子 - 声子耦合以及相应的声子谱函数,是从分子动力学和量子化学模拟中推导出来的。该模型预测,在室温下,B850 BChl环中的激子在五个色素上离域。此外,极化子模型允许仅根据单个BChls激发能的自相关函数来计算B850激子的吸收光谱和圆二色光谱,而这可以很容易地从分子动力学和量子化学模拟的组合中获得。发现所得结果与实验测量的吸收光谱和圆二色光谱吻合良好。