首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Numerical studies of the membrane fluorescent dyes dynamics in ground and excited states.
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Numerical studies of the membrane fluorescent dyes dynamics in ground and excited states.

机译:膜荧光染料在基态和激发态下动力学的数值研究。

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Fluorescence methods are widely used in studies of biological and model membranes. The dynamics of membrane fluorescent markers in their ground and excited electronic states and correlations with their molecular surrounding within the fully hydrated phospholipid bilayer are still not well understood. In the present work, Quantum Mechanical (QM) calculations and Molecular Dynamics (MD) simulations are used to characterize location and interactions of two membrane polarity probes (Prodan; 6-propionyl-2-dimethylaminonaphthalene and its derivative Laurdan; 2-dimethylamino-6-lauroylnaphthalene) with the dioleoylphosphatidylcholine (DOPC) lipid bilayer model. MD simulations with fluorophores in ground and excited states are found to be a useful tool to analyze the fluorescent dye dynamics and their immediate vicinity. The results of QM calculations and MD simulations are in excellent agreement with available experimental data. The calculation shows that the two amphiphilic dyes initially placed in bulk water diffuse within 10ns towards their final location in the lipid bilayer. Analysis of solvent relaxation process in the aqueous phase occurs on the picoseconds timescale whereas it takes nanoseconds at the lipid/water interface. Four different relaxation time constants, corresponding to different relaxation processes, where observed when the dyes were embedded into the membrane.
机译:荧光方法被广泛用于生物膜和模型膜的研究。膜荧光标记在其基态和激发电子状态下的动力学以及与它们在完全水合的磷脂双分子层中的分子周围的相关性的动力学仍未得到很好的理解。在当前的工作中,使用量子力学(QM)计算和分子动力学(MD)模拟来表征两个膜极性探针(Prodan; 6-丙酰-2-二甲基氨基萘及其衍生物Laurdan; 2-二甲基氨基-6)的位置和相互作用。 -月桂酰萘)与二油酰基磷脂酰胆碱(DOPC)脂质双层模型。发现具有基态和激发态的荧光团的MD模拟是分析荧光染料动力学及其紧邻的有用工具。 QM计算和MD模拟的结果与可用的实验数据非常吻合。计算表明,最初放置在散装水中的两种两亲性染料会在10ns内向它们在脂质双层中的最终位置扩散。水相中溶剂松弛过程的分析发生在皮秒级的时间范围内,而在脂质/水界面则需要纳秒级的时间。四种不同的弛豫时间常数,分别对应于不同的弛豫过程,当染料嵌入膜中时可以观察到。

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