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Contribution of Fluorophore Dynamics and Solvation to Resonant Energy Transfer in Protein-DNA Complexes: A Molecular-Dynamics Study

机译:荧光团动力学和溶剂化对蛋白质-DNA复合物中共振能量转移的贡献:分子动力学研究。

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摘要

In Förster resonance energy transfer (FRET) experiments, extracting accurate structural information about macromolecules depends on knowing the positions and orientations of donor and acceptor fluorophores. Several approaches have been employed to reduce uncertainties in quantitative FRET distance measurements. Fluorophore-position distributions can be estimated by surface accessibility (SA) calculations, which compute the region of space explored by the fluorophore within a static macromolecular structure. However, SA models generally do not take fluorophore shape, dye transition-moment orientation, or dye-specific chemical interactions into account. We present a detailed molecular-dynamics (MD) treatment of fluorophore dynamics for an ATTO donor/acceptor dye pair and specifically consider as case studies dye-labeled protein-DNA intermediates in Cre site-specific recombination. We carried out MD simulations in both an aqueous solution and glycerol/water mixtures to assess the effects of experimental solvent systems on dye dynamics. Our results unequivocally show that MD simulations capture solvent effects and dye-dye interactions that can dramatically affect energy transfer efficiency. We also show that results from SA models and MD simulations strongly diverge in cases where donor and acceptor fluorophores are in close proximity. Although atomistic simulations are computationally more expensive than SA models, explicit MD studies are likely to give more realistic results in both homogeneous and mixed solvents. Our study underscores the model-dependent nature of FRET analyses, but also provides a starting point to develop more realistic in silico approaches for obtaining experimental ensemble and single-molecule FRET data.
机译:在Förster共振能量转移(FRET)实验中,提取有关大分子的准确结构信息取决于了解供体和受体荧光团的位置和方向。已经采用了几种方法来减少定量FRET距离测量中的不确定性。荧光团的位置分布可通过表面可及性(SA)计算来估算,该计算可计算出荧光团在静态大分子结构内所探索的空间区域。但是,SA模型通常不考虑荧光团的形状,染料的过渡矩取向或染料特异性的化学相互作用。我们介绍了一个ATTO供体/受体染料对的荧光团动力学的详细分子动力学(MD)处理,并特别考虑作为案例研究Cre位点特异性重组中的染料标记的蛋白质-DNA中间体。我们在水溶液和甘油/水混合物中均进行了MD模拟,以评估实验溶剂系统对染料动力学的影响。我们的结果明确表明,MD模拟捕获了可以显着影响能量转移效率的溶剂效应和染料-染料相互作用。我们还表明,在供体和受体荧光团非常接近的情况下,来自SA模型和MD模拟的结果差异很大。尽管原子模拟在计算上比SA模型昂贵,但是显式MD研究可能在均相和混合溶剂中给出更实际的结果。我们的研究强调了FRET分析的模型依赖性,但同时也为开发更真实的计算机模拟方法以获得实验合奏和单分子FRET数据提供了起点。

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