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病毒壳的原子力显微镜观察

Atomic force microscopy of virus shells.

机构信息

Departamento de Física de la Materia Condensada and Solid Condensed Matter Institute IFIMAC, Universidad Autónoma de Madrid, 28049 Madrid, Spain.

出版信息

Semin Cell Dev Biol. 2018 Jan;73:199-208. doi: 10.1016/j.semcdb.2017.08.039. Epub 2017 Aug 26.

Abstract

Microscopes are used to characterize small specimens with the help of probes, such as photons and electrons in optical and electron microscopies, respectively. In atomic force microscopy (AFM) the probe is a nanometric tip located at the end of a microcantilever which palpates the specimen under study as a blind person manages a white cane to explore the surrounding. In this way, AFM allows obtaining nanometric resolution images of individual protein shells, such as viruses, in liquid milieu. Beyond imaging, AFM also enables the manipulation of single protein cages, and the characterization of every physico-chemical property able of inducing any measurable mechanical perturbation to the microcantilever that holds the tip. Here we describe several AFM approaches to study individual protein cages, including imaging and spectroscopic methodologies for extracting mechanical and electrostatic properties. In addition, AFM allows discovering and testing the self-healing capabilities of protein cages because occasionally they may recover fractures induced by the AFM tip. Beyond the protein shells, AFM also is able of exploring the genome inside, obtaining, for instance, the condensation state of dsDNA and measuring its diffusion when the protein cage breaks.

摘要

显微镜用于借助探针来表征小样本,例如在光学显微镜和电子显微镜中分别使用光子和电子作为探针。在原子力显微镜(AFM)中,探针是位于微悬臂梁末端的纳米级尖端,它像盲人使用盲杖一样探测研究中的样本。通过这种方式,AFM 可以在液体环境中获得单个蛋白质壳(如病毒)的纳米级分辨率图像。除了成像之外,AFM 还可以操纵单个蛋白质笼,并对能够对保持尖端的微悬臂梁产生任何可测量机械扰动的每一种物理化学性质进行表征。在这里,我们描述了几种用于研究单个蛋白质笼的 AFM 方法,包括用于提取机械和静电特性的成像和光谱方法。此外,AFM 还可以发现和测试蛋白质笼的自我修复能力,因为它们偶尔可能会恢复由 AFM 尖端引起的断裂。除了蛋白质壳之外,AFM 还能够探测内部的基因组,例如,获得 dsDNA 的凝聚状态,并在蛋白质笼破裂时测量其扩散。

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