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用于原子力显微镜成像的碳纳米管生物功能化

Biofunctionalization of carbon nanotubes for atomic force microscopy imaging.

作者信息

Woolley Adam T

机构信息

Department of Chemistry and Biochemistry, Brigham Young University, Provo, UT, USA.

出版信息

Methods Mol Biol. 2004;283:305-19. doi: 10.1385/1-59259-813-7:305.

Abstract

The study of biological processes relies increasingly on methods for probing structure and function of biochemical machinery (proteins, nucleic acids, and so on) with submolecular resolution. Atomic force microscopy (AFM) has recently emerged as a promising approach for imaging biological structures with resolution approaching the nanometer scale. Two important limitations of AFM in biological imaging are (1) resolution is constrained by probe tip dimensions, and (2) typical probe tips lack chemical specificity to differentiate between functional groups in biological structures. Single-walled carbon nanotubes (SWNTs) offer an intriguing possibility for providing both high resolution and chemical selectivity in AFM imaging, thus overcoming the enumerated limitations. Procedures for generating SWNT tips for AFM will be described. Carboxylic acid functional groups at the SWNT ends can be functionalized using covalent coupling chemistry to attach biological moieties via primary amine groups. Herein, the focus will be on describing methods for attaching biotin to SWNT tips and probing streptavidin on surfaces; importantly, this same coupling chemistry can also be applied to other biomolecules possessing primary amine groups. Underivatized SWNT tips can also provide high-resolution AFM images of DNA. Biofunctionalization of SWNT AFM tips offers great potential to enable high-resolution, chemically selective imaging of biological structures.

摘要

生物学过程的研究越来越依赖于以亚分子分辨率探测生化机制(蛋白质、核酸等)结构和功能的方法。原子力显微镜(AFM)最近已成为一种很有前景的对生物结构进行成像的方法,其分辨率接近纳米尺度。AFM在生物成像中的两个重要局限性是:(1)分辨率受探针尖端尺寸的限制;(2)典型的探针尖端缺乏化学特异性,无法区分生物结构中的官能团。单壁碳纳米管(SWNTs)为在AFM成像中提供高分辨率和化学选择性提供了一种引人关注的可能性,从而克服了上述局限性。将描述用于制备AFM的SWNT尖端的程序。SWNT末端的羧酸官能团可以使用共价偶联化学进行功能化,以通过伯胺基团连接生物部分。在此,重点将是描述将生物素连接到SWNT尖端并探测表面上链霉亲和素的方法;重要的是,这种相同的偶联化学也可以应用于具有伯胺基团的其他生物分子。未衍生化的SWNT尖端也可以提供DNA的高分辨率AFM图像。SWNT AFM尖端的生物功能化具有实现对生物结构进行高分辨率、化学选择性成像的巨大潜力。

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