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光系统I中的热位点能量波动:MD/QM/MM计算的新见解

Thermal site energy fluctuations in photosystem I: new insights from MD/QM/MM calculations.

作者信息

Reiter Sebastian, Kiss Ferdinand L, Hauer Jürgen, de Vivie-Riedle Regina

机构信息

Department of Chemistry, Ludwig-Maximilians-Universität München Butenandtstr. 11 81377 Munich Germany

Department of Chemistry, Technical University of Munich Lichtenbergstr. 4, Garching 85747 Germany.

出版信息

Chem Sci. 2023 Feb 6;14(12):3117-3131. doi: 10.1039/d2sc06160k. eCollection 2023 Mar 22.

Abstract

Cyanobacterial photosystem I (PSI) is one of the most efficient photosynthetic machineries found in nature. Due to the large scale and complexity of the system, the energy transfer mechanism from the antenna complex to the reaction center is still not fully understood. A central element is the accurate evaluation of the individual chlorophyll excitation energies (site energies). Such an evaluation must include a detailed treatment of site specific environmental influences on structural and electrostatic properties, but also their evolution in the temporal domain, because of the dynamic nature of the energy transfer process. In this work, we calculate the site energies of all 96 chlorophylls in a membrane-embedded model of PSI. The employed hybrid QM/MM approach using the multireference DFT/MRCI method in the QM region allows to obtain accurate site energies under explicit consideration of the natural environment. We identify energy traps and barriers in the antenna complex and discuss their implications for energy transfer to the reaction center. Going beyond previous studies, our model also accounts for the molecular dynamics of the full trimeric PSI complex. statistical analysis we show that the thermal fluctuations of single chlorophylls prevent the formation of a single prominent energy funnel within the antenna complex. These findings are also supported by a dipole exciton model. We conclude that energy transfer pathways may form only transiently at physiological temperatures, as thermal fluctuations overcome energy barriers. The set of site energies provided in this work sets the stage for theoretical and experimental studies on the highly efficient energy transfer mechanisms in PSI.

摘要

蓝藻光系统I(PSI)是自然界中发现的最高效的光合机制之一。由于该系统的规模和复杂性,从天线复合体到反应中心的能量转移机制仍未完全理解。一个核心要素是对单个叶绿素激发能(位点能)的准确评估。这样的评估必须包括对位点特异性环境对结构和静电性质的影响进行详细处理,而且由于能量转移过程的动态性质,还包括它们在时间域中的演化。在这项工作中,我们计算了PSI膜嵌入模型中所有96个叶绿素的位点能。在QM区域采用使用多参考DFT/MRCI方法的混合QM/MM方法,能够在明确考虑自然环境的情况下获得准确的位点能。我们识别了天线复合体中的能量陷阱和势垒,并讨论了它们对向反应中心能量转移的影响。超越以往的研究,我们的模型还考虑了完整三聚体PSI复合体的分子动力学。通过统计分析我们表明,单个叶绿素的热涨落会阻止在天线复合体内形成单个突出的能量漏斗。这些发现也得到了偶极激子模型的支持。我们得出结论,由于热涨落克服了能量势垒,能量转移途径可能仅在生理温度下短暂形成。这项工作中提供的位点能集合为关于PSI中高效能量转移机制的理论和实验研究奠定了基础。

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