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β-淀粉样蛋白 Langmuir 单层的流变性质:与蜂毒素肽的比较研究。

The rheological properties of beta amyloid Langmuir monolayers: Comparative studies with melittin peptide.

机构信息

CIQUIBIC, Departamento de Química Biológica, Facultad de Ciencias Químicas, CONICET, Universidad Nacional de Córdoba, Argentina.

CIQUIBIC, Departamento de Química Biológica, Facultad de Ciencias Químicas, CONICET, Universidad Nacional de Córdoba, Argentina.

出版信息

Colloids Surf B Biointerfaces. 2016 Oct 1;146:180-7. doi: 10.1016/j.colsurfb.2016.06.003. Epub 2016 Jun 3.

Abstract

We determined the rheological properties of β-amyloid Langmuir films at the air/water interface, a peptide whose interfacial structure is extended β-sheet, and compared them with those of films composed of Melittin (Mel), which adopts an α-helical conformation at neutral pH. To determine the dilatational and shear moduli we evaluated the response of pure peptide monolayers to an oscillatory anisotropic compressive work. Additionally, a micro-rheological characterization was performed by tracking the diffusion of micrometer sized latex beads onto the interface. This technique allowed us the detection of different rheological behaviour between monolayers presenting a low shear response. Monolayers of the β-sheet structure-adopting peptides, such as β-amyloid peptides, exhibited a marked shear (elastic) modulus even at low surface pressures. In contrast, Mel monolayers exhibited negligible shear modulus and the micro-rheological shear response was markedly lower than that observed for either Aβ1-40 or Aβ1-42 amyloid peptides. When Mel monolayers were formed at the interface of an aqueous solution at pH 11, we observed an increase in both the lateral stability and film viscosity as detected by a slower diffusion of the latex beads, in keeping with an increase in β-sheet structure at this high pH (verified by ATR and FT-IR measurements). We suggest that the interactions responsible for the marked response upon shear observed for β-amyloid peptide monolayers are the hydrogen bonds of the β-sheet structure that can form an infinite planar network at the interface. Conversely, α-helical Mel peptide lack of these inter-molecular interactions and, therefore the shear contribution was negligible. We propose that the secondary structure is important for modulating the rheological behavior of short peptide monolayers regardless of the mass density or surface charge at the surface.

摘要

我们测定了β-淀粉样蛋白Langmuir 膜在气/水界面的流变性质,这种肽的界面结构是伸展的β-折叠,并将其与由蜂毒素(Mel)组成的膜的性质进行了比较,Mel 在中性 pH 下呈α-螺旋构象。为了确定拉伸和剪切弹性模量,我们评估了纯肽单层对振荡各向异性压缩功的响应。此外,通过跟踪微米大小的乳胶珠在界面上的扩散进行了微流变特性表征。该技术允许我们检测具有低剪切响应的单层之间的不同流变行为。采用β-淀粉样蛋白肽等β-折叠结构的肽的单层,即使在低表面压力下也表现出明显的剪切(弹性)模量。相比之下,Mel 单层表现出可忽略不计的剪切模量,并且微流变剪切响应明显低于观察到的 Aβ1-40 或 Aβ1-42 淀粉样蛋白肽。当 Mel 单层在 pH 11 的水溶液界面上形成时,我们观察到横向稳定性和膜粘度的增加,这可以通过乳胶珠扩散速度较慢来检测到,这与在高 pH 下β-折叠结构的增加是一致的(通过 ATR 和 FT-IR 测量验证)。我们认为,导致β-淀粉样蛋白肽单层在剪切下观察到的明显响应的相互作用是β-折叠结构的氢键,这些氢键可以在界面上形成无限的平面网络。相反,缺乏这些分子间相互作用的α-螺旋 Mel 肽,因此剪切贡献可以忽略不计。我们提出,二级结构对于调节短肽单层的流变行为很重要,无论在表面的质量密度还是表面电荷如何。

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