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紫膜两侧与原子力显微镜探针之间的不同相互作用。

Different interactions between the two sides of purple membrane with atomic force microscope tip.

作者信息

Zhong Sheng, Li Hui, Chen Xin-Yong, Cao En-Hua, Jin Gang, Hu Kun-Sheng

机构信息

Institute of Biophysics, Chinese Academy of Sciences, 15 Datun Road, Chaoyang District, Beijing 100101, China.

出版信息

Langmuir. 2007 Apr 10;23(8):4486-93. doi: 10.1021/la0631062. Epub 2007 Mar 15.

DOI:10.1021/la0631062
PMID:17358085
Abstract

Atomic force microscopy (AFM) is known to be capable of measuring local surface charge density based on the DLVO model. However, it has failed to distinguish charge density difference between the extracellular and cytoplasmic sides of purple membrane (PM) in previous studies. In this paper, tapping-mode AFM with thioglycolate-modified tips was used to image PM in buffers of different salt concentrations. When imaged in 25 mM KCl buffer, the topography of membranes appeared to be of two different types, one flat and the other domelike. Such a difference was not observed in buffers of high salt concentrations. This suggests that the topography variation results from differences in electrostatic interaction between the AFM tip and the different membrane surfaces. With images of papain-digested PM and high-resolution images of membrane surface structure, we proved that the membrane surfaces with flat topography were on the extracellular side while the surfaces with domelike topography were on the cytoplasmic side. Hence, this provides a straightforward method to distinguish the two sides of PM without the requirement of high-resolution imaging. Force-distance curves clearly demonstrated the different tip-sample interactions. The force curves recorded on the extracellular side of PM were consistent with the DLVO model, so its surface charge density can be estimated well. However, the curves recorded on the cytoplasmic side had a much longer decay length, which is supposed to be relevant to the flexibility of the C-terminus of bacteriorhodopsin (bR).

摘要

已知原子力显微镜(AFM)能够基于DLVO模型测量局部表面电荷密度。然而,在先前的研究中,它未能区分紫膜(PM)细胞外侧和细胞质侧之间的电荷密度差异。在本文中,使用带有巯基乙酸修饰探针的轻敲模式AFM对处于不同盐浓度缓冲液中的PM进行成像。当在25 mM KCl缓冲液中成像时,膜的形貌似乎有两种不同类型,一种是平坦的,另一种是穹顶状的。在高盐浓度缓冲液中未观察到这种差异。这表明形貌变化是由AFM探针与不同膜表面之间静电相互作用的差异引起的。通过木瓜蛋白酶消化的PM的图像和膜表面结构的高分辨率图像,我们证明了具有平坦形貌的膜表面在细胞外侧,而具有穹顶状形貌的表面在细胞质侧。因此,这提供了一种无需高分辨率成像即可区分PM两侧的直接方法。力-距离曲线清楚地表明了不同的探针-样品相互作用。在PM细胞外侧记录的力曲线与DLVO模型一致,因此可以很好地估计其表面电荷密度。然而,在细胞质侧记录的曲线具有长得多的衰减长度,这应该与细菌视紫红质(bR)C末端的柔韧性有关。

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