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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Surface pressure induced structural transitions of an amphiphilic peptide in pulmonary surfactant systems by an in situ PM-IRRAS study
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Surface pressure induced structural transitions of an amphiphilic peptide in pulmonary surfactant systems by an in situ PM-IRRAS study

机译:通过原位PM-IRRAS研究表面压力诱导两性肽在肺表面活性剂系统中的结构转变

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摘要

Pulmonary surfactant model peptide, Hel 13-5, in binary and ternary lipid mixtures has been characterized employing the polarization-modulation infrared reflection-absorption spectroscopy (PM-IRRAS) in situ at the air-water interface for a monolayer state and the polarized ATR-FTIR for a bilayer film. In the bilayer form, Hel 13-5 predominantly adopts an ??-helical secondary structure in the lipid mixtures. It had been made clear from CD measurements that the Hel 13-5 structure is mainly in the ??-helical form in aqueous solutions. In the monolayer state, however, the secondary structure of Hel 13-5 exhibits an interconversion of the ??-helix into ??-sheet with increasing surface pressures. The difference in the secondary structure is attributed to formation of a surface-associated reservoir just below the surface monolayer. The reservoir formation is a key function of pulmonary surfactants and is induced by a squeeze-out of the fluid components in their monolayers. Compression and expansion cycles of the monolayers generate a hysteresis in molecular orientation of the lipid monolayer as well as in peptide structure. The formation and deformation of reservoirs are, in common, deeply related to the hysteresis behavior. Thus, the transition of peptide structures across the interface is a quite important matter to clarify the role and its mechanism of the reservoirs in pulmonary functions. The present study primarily reveals roles of the anionic lipids in control of the peptide secondary structure. Accordingly, it is demonstrated that they prevent the protein structure transition from ??-helix into ??-sheet by incorporating the peptide during the squeeze-out event. ? 2012 Elsevier B.V. All rights reserved.
机译:二元和三元脂质混合物中的肺表面活性剂模型肽Hel 13-5已通过在空气-水界面处就单层状态和极化ATR进行原位极化调制红外反射吸收光谱(PM-IRRAS)进行了表征-用于双层膜的FTIR。在双层形式中,Hel 13-5在脂质混合物中主要采用α-螺旋二级结构。通过CD测量已经清楚Hel 13-5结构在水溶液中主要为β-螺旋形式。然而,在单层状态下,Hel 13-5的二级结构显示出随着表面压力的增加,α-螺旋相互转变成α-折叠。二级结构的差异归因于在表面单层正下方的表面相关储集层的形成。储层的形成是肺表面活性剂的关键功能,并且是由其单层中的流体成分的挤出引起的。单层的压缩和膨胀循环在脂质单层的分子取向以及肽结构中产生滞后作用。通常,储层的形成和变形与滞后行为密切相关。因此,跨界面的肽结构转变对于弄清储层在肺功能中的作用及其机制是非常重要的事情。本研究主要揭示了阴离子脂质在肽二级结构控制中的作用。因此,证明了它们通过在挤出事件中掺入肽来防止蛋白质结构从α-螺旋转变为β-折叠。 ? 2012 Elsevier B.V.保留所有权利。

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