首页> 美国卫生研究院文献>Biophysical Journal >Probing alpha-helical secondary structure at a specific site in model peptides via restriction of tryptophan side-chain rotamer conformation.
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Probing alpha-helical secondary structure at a specific site in model peptides via restriction of tryptophan side-chain rotamer conformation.

机译:通过色氨酸侧链旋转异构体构象的限制在模型肽的特定位点探测α-螺旋二级结构。

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摘要

The relationship between alpha-helical secondary structure and the fluorescence properties of an intrinsic tryptophan residue were investigated. A monomeric alpha-helix forming peptide and a dimeric coiled-coil forming peptide containing a central tryptophan residue were synthesized. The fluorescence parameters of the tryptophan residue were determined for these model systems at a range of fractional alpha-helical contents. The steady-state emission maximum was independent of the fractional alpha-helical content. A minimum of three exponential decay times was required to fully describe the time-resolved fluorescence data. Changes were observed in the decay times and more significantly, in their relative contributions that could be correlated with alpha-helix content. The results were also shown to be consistent with a model in which the decay times were independent of both alpha-helix content and emission wavelength. In this model the relative contributions of the decay time components were directly proportional to the alpha-helix content. Data were also analyzed according to a continuous distribution of exponential decay time model, employing global analysis techniques. The recovered distributions had "widths" that were both poorly defined and independent of peptide conformation. We propose that the three decay times are associated with the three ground-state chi 1 rotamers of the tryptophan residue and that the changes in the relative contributions of the decay times are the result of conformational constraints, imposed by the alpha-helical main-chain, on the chi 1 rotamer populations.
机译:研究了α-螺旋二级结构和固有色氨酸残基的荧光性质之间的关系。合成了包含中央色氨酸残基的单体形成α-螺旋的肽和形成二聚体的卷曲螺旋的肽。确定了这些模型系统在一定比例的α-螺旋含量下色氨酸残基的荧光参数。稳态发射最大值与分数α-螺旋含量无关。至少需要三个指数衰减时间才能完整描述时间分辨的荧光数据。在衰减时间中观察到变化,并且在与α-螺旋含量相关的相对贡献中观察到更明显的变化。结果还表明与衰减时间与α-螺旋含量和发射波长均无关的模型是一致的。在该模型中,衰减时间分量的相对贡献与α-螺旋含量成正比。还使用全局分析技术根据指数衰减时间模型的连续分布来分析数据。回收的分布具有“宽度”,其定义不明确且与肽构象无关。我们建议这三个衰变时间与色氨酸残基的三个基态chi 1旋转异构体有关,并且衰变时间的相对贡献的变化是构象约束的结果,由α-螺旋主链施加,在chi 1 rotamer种群上。

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