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γ-玉米醇溶蛋白富含脯氨酸的N端结构域肽的朗缪尔膜和朗缪尔-布洛杰特膜

Langmuir and Langmuir-Blodgett films of proline-rich N-terminal domain peptide of gamma-zein.

作者信息

Lakshmanan Muthuselvi, Dhathathreyan Aruna

机构信息

Chemical Laboratory, CLRI, Adyar, Chennai 600020, India.

出版信息

Colloids Surf B Biointerfaces. 2007 Apr 1;55(2):185-91. doi: 10.1016/j.colsurfb.2006.11.038. Epub 2006 Dec 6.

Abstract

The proline-rich N-Terminal domain peptides of gamma-zein (VHLPPP)(n) with n=1 and 3 (peptides I and II) are shown to form stable Langmuir films at air/water interface and the films have been characterized using surface pressure-molecular area (pi-A), surface potential-molecular area (DeltaV-A) isotherms, respectively. The longer peptide sequence does not show dramatic increase in surface or interfacial properties suggesting that the minimum length of n=1 is sufficient to achieve the necessary surface properties. Brewster angle micrographs also agreed with these results. The high surface-active nature of the peptide suggests a fairly non-polar character at air/water interface and at solid/air interface when coated expresses a high surface energy. Additives such as isopropyl alcohol (IPA) and polyvinyl alcohol (PVA) with the peptides showed more homogenous films at the air/water interface and also improved mechanical and tensile properties. The organized assembly of peptide I at the air/water and solid/air interface suggests that even thin layer of the peptide could play an important role in coating the inner surface of protein body membrane in storage proteins. Composite films of such short peptides with biocompatible polymers may find applications as surface coatings and in biomaterials.

摘要

γ-玉米醇溶蛋白富含脯氨酸的N端结构域肽(VHLPPP)(n),其中n = 1和3(肽I和肽II)已被证明在空气/水界面形成稳定的朗缪尔膜,并且已分别使用表面压力-分子面积(π-A)、表面电势-分子面积(ΔV-A)等温线对这些膜进行了表征。较长的肽序列在表面或界面性质上没有显示出显著增加,这表明n = 1的最小长度足以实现必要的表面性质。布鲁斯特角显微镜图像也与这些结果一致。该肽的高表面活性性质表明在空气/水界面具有相当非极性的特征,并且在涂覆时在固体/空气界面表现出高表面能。与肽一起使用的添加剂如异丙醇(IPA)和聚乙烯醇(PVA)在空气/水界面显示出更均匀的膜,并且还改善了机械和拉伸性能。肽I在空气/水和固体/空气界面的有序组装表明,即使是该肽的薄层也可能在储存蛋白的蛋白体膜内表面涂层中起重要作用。这种短肽与生物相容性聚合物的复合膜可能会在表面涂层和生物材料中得到应用。

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