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首页> 外文期刊>Journal of Computational Chemistry: Organic, Inorganic, Physical, Biological >Molecular Dynamics Simulation of Configurational Ensembles Compatible with Experimental FRET Efficiency Data Through a Restraint on Instantaneous FRET Efficiencies
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Molecular Dynamics Simulation of Configurational Ensembles Compatible with Experimental FRET Efficiency Data Through a Restraint on Instantaneous FRET Efficiencies

机译:通过瞬时FRET效率的约束与实验FRET效率数据兼容的构型集合的分子动力学模拟

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Forster resonance energy transfer (FRET) measurements are widely used to investigate (bio)molecular interactions or/and association. FRET efficiencies, the primary data obtained from this method, give, in combination with the common assumption of isotropic chromophore orientation, detailed insight into the lengthscale of molecular phenomena. This study illustrates the application of a FRET efficiency restraint during classical atomistic molecular dynamics simulations of a mutant mastoparan X peptide in either water or 7 M aqueous urea. The restraint forces acting on the donor and acceptor chromophores ensure that the sampled peptide configurational ensemble satisfies the experimental primary data by modifying interchromophore separation and chromophore transition dipole moment orientations. By means of a conformational cluster analysis, it is seen that indeed different configurational ensembles may be sampled without and with application of the restraint. In particular, while the FRET efficiency and interchromophore distances monitored in an unrestrained simulation may differ from the experimentally-determined values, they can be brought in agreement with experimental data through usage of the FRET efficiency restraining potential. Furthermore, the present results suggest that the assumption of isotropic chromophore orientation is not always justified. The FRET efficiency restraint allows the generation of configurational ensembles that may not be accessible with unrestrained simulations, and thereby supports a meaningful interpretation of experimental FRET results in terms of the underlying molecular degrees of freedom. Thus, it offers an additional tool to connect the realms of computer and wet-lab experimentation. (c) 2014 Wiley Periodicals, Inc.
机译:Forster共振能量转移(FRET)测量被广泛用于研究(生物)分子相互作用或/和缔合。 FRET效率是从该方法获得的主要数据,结合各向同性发色团取向的一般假设,可以深入了解分子现象的长度尺度。这项研究说明了FRET效率约束在水或7 M尿素中的突变体乳脂素X肽的经典原子分子动力学模拟过程中的应用。作用在供体和受体生色团上的约束力可确保通过修饰生色团分离和生色团跃迁偶极矩方向来采样的肽构型整体满足实验原始数据。通过构象聚类分析,可以看出,在不施加约束和施加约束的情况下,确实可以采样不同的构形合奏。特别是,尽管在不受限制的模拟中监控的FRET效率和发色团距离可能与实验确定的值不同,但可以通过使用FRET效率抑制潜力使它们与实验数据保持一致。此外,目前的结果表明,各向同性发色团取向的假设并不总是合理的。 FRET效率约束允许生成不受约束的模拟可能无法访问的构型集合,从而支持根据潜在的分子自由度对实验性FRET结果进行有意义的解释。因此,它提供了一个额外的工具来连接计算机领域和湿实验室的领域。 (c)2014年威利期刊有限公司

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