Milanovsky Georgy E, Ptushenko Vasily V, Golbeck John H, Semenov Alexey Yu, Cherepanov Dmitry A
A.N. Belozersky Institute of Physical-Chemical Biology, Moscow State University, Moscow, Russia; Faculty of Bioengineering and Bioinformatics, Moscow State University, Moscow, Russia.
A.N. Belozersky Institute of Physical-Chemical Biology, Moscow State University, Moscow, Russia.
Biochim Biophys Acta. 2014 Sep;1837(9):1472-83. doi: 10.1016/j.bbabio.2014.03.001. Epub 2014 Mar 15.
Molecular dynamics (MD) calculations, a semi-continuum (SC) approach, and quantum chemistry (QC) calculations were employed together to investigate the molecular mechanics of ultrafast charge separation reactions in Photosystem I (PS I) of Thermosynechococcus elongatus. A molecular model of PS I was developed with the aim to relate the atomic structure with electron transfer events in the two branches of cofactors. A structural flexibility map of PS I was constructed based on MD simulations, which demonstrated its rigid hydrophobic core and more flexible peripheral regions. The MD model permitted the study of atomic movements (dielectric polarization) in response to primary and secondary charge separations, while QC calculations were used to estimate the direct chemical effect of the A(0A)/A(0B) ligands (Met or Asn in the 688/668 position) on the redox potential of chlorophylls A(0A)/A(0B) and phylloquinones A(1A)/A(1B). A combination of MD and SC approaches was used to estimate reorganization energies λ of the primary (λ₁) and secondary (λ₂ ) charge separation reactions, which were found to be independent of the active branch of electron transfer; in PS I from the wild type, λ₁ was estimated to be 390 ± 20mV, while λ₂ was estimated to be higher at 445 ± 15mV. MD and QC approaches were used to describe the effect of substituting Met688(PsaA)/Met668(PsaB) by Asn688(PsaA)/Asn668(PsaB) on the energetics of electron transfer. Unlike Met, which has limited degrees of freedom in the site, Asn was found to switch between two relatively stable conformations depending on cofactor charge. The introduction of Asn and its conformation flexibility significantly affected the reorganization energy of charge separation and the redox potentials of chlorophylls A(0A)/A(0B) and phylloquinones A(1A)/A(1B), which may explain the experimentally observed slowdown of secondary electron transfer in the M688N(PsaA) variant. This article is part of a special issue entitled: photosynthesis research for sustainability: keys to produce clean energy.
采用分子动力学(MD)计算、半连续(SC)方法和量子化学(QC)计算相结合的方式,研究了嗜热栖热放线菌光系统I(PS I)中超快电荷分离反应的分子机制。构建了PS I的分子模型,旨在将原子结构与辅因子两个分支中的电子转移事件联系起来。基于MD模拟构建了PS I的结构灵活性图谱,该图谱显示其具有刚性的疏水核心和更灵活的外围区域。MD模型允许研究原子运动(介电极化)对初级和次级电荷分离的响应,而QC计算用于估计A(0A)/A(0B)配体(688/668位的甲硫氨酸或天冬酰胺)对叶绿素A(0A)/A(0B)和叶醌A(1A)/A(1B)氧化还原电位的直接化学效应。结合MD和SC方法估算了初级(λ₁)和次级(λ₂)电荷分离反应的重组能λ,发现其与电子转移的活性分支无关;在野生型的PS I中,λ₁估计为390±20mV,而λ₂估计更高,为445±15mV。使用MD和QC方法描述了用天冬酰胺688(PsaA)/天冬酰胺668(PsaB)取代甲硫氨酸688(PsaA)/甲硫氨酸668(PsaB)对电子转移能量学的影响。与在该位点自由度有限的甲硫氨酸不同,发现天冬酰胺会根据辅因子电荷在两种相对稳定的构象之间切换。天冬酰胺的引入及其构象灵活性显著影响了电荷分离的重组能以及叶绿素A(0A)/A(0B)和叶醌A(1A)/A(1B)的氧化还原电位,这可能解释了在M688N(PsaA)变体中实验观察到的次级电子转移减慢现象。本文是名为“光合作用研究促进可持续发展:生产清洁能源的关键”的特刊的一部分。