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分子胶原蛋白和磷脂膜的扫描隧道显微镜成像

STM imaging of molecular collagen and phospholipid membranes.

作者信息

Voelker M A, Hameroff S R, He J D, Dereniak E L, McCuskey R S, Schneiker C W, Chvapil T A, Bell L S, Weiss L B

机构信息

Optical Sciences Center, University of Arizona, Tucson 85724.

出版信息

J Microsc. 1988 Nov;152(Pt 2):557-66. doi: 10.1111/j.1365-2818.1988.tb01421.x.

Abstract

The application of STM to biological materials has been limited by poor conductivity, sample geometry and stability of biological materials. In this paper we describe an STM study of the monomeric helical forms of collagen, a stable, conductive and widely prevalent structural protein. We have also used STM to image artificial Langmuir DPE (dipalmitoyl phosphatidyl ethanolamine) phospholipid membranes. Both molecular collagen and the phospholipid membranes were dried in air on highly oriented pyrolytic graphite (HOPG). Our STM images of collagen dried on HOPG reveal strands 15 A in diameter with a periodicity of about 30 A which correlates with that known to occur in collagen. Spikes which periodically protrude from strands in our STM images of collagen appear to represent pyrrolidine ring structures in the amino acids proline and hydroxyproline. Thus, we report the first STM imaging of native biomolecules revealing intramolecular details and what appear to be specific amino acids. STM imaging of phospholipid membranes show a lattice pattern with densities spaced approximately 4.5 A apart. These are thought to represent individual phospholipid molecules in an artificial membrane formed on the HOPG. We believe STM and its related technologies will have great future utility in biomolecular studies.

摘要

扫描隧道显微镜(STM)在生物材料上的应用一直受到生物材料导电性差、样品几何形状以及稳定性的限制。在本文中,我们描述了对胶原蛋白单体螺旋形式的STM研究,胶原蛋白是一种稳定、导电且广泛存在的结构蛋白。我们还使用STM对人工的朗缪尔二棕榈酰磷脂酰乙醇胺(DPE)磷脂膜进行成像。分子胶原蛋白和磷脂膜均在空气中干燥于高度取向的热解石墨(HOPG)上。我们在HOPG上干燥的胶原蛋白的STM图像显示,直径为15埃的链状物,其周期性约为30埃,这与已知的胶原蛋白中的情况相关。在我们的胶原蛋白STM图像中,从链状物上周期性突出的尖峰似乎代表脯氨酸和羟脯氨酸氨基酸中的吡咯烷环结构。因此,我们报告了首次对天然生物分子进行的STM成像,揭示了分子内细节以及似乎是特定氨基酸的情况。磷脂膜的STM成像显示出一种晶格图案,密度间隔约为4.5埃。这些被认为代表在HOPG上形成的人工膜中的单个磷脂分子。我们相信STM及其相关技术在生物分子研究中将具有巨大的未来应用价值。

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