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利用冷冻电子断层扫描和自动亚断层平均法测定HIV包膜糖蛋白的分子结构。

Determination of molecular structures of HIV envelope glycoproteins using cryo-electron tomography and automated sub-tomogram averaging.

作者信息

Meyerson Joel R, White Tommi A, Bliss Donald, Moran Amy, Bartesaghi Alberto, Borgnia Mario J, de la Cruz M Jason V, Schauder David, Hartnell Lisa M, Nandwani Rachna, Dawood Moez, Kim Brianna, Kim Jun Hong, Sununu John, Yang Lisa, Bhatia Siddhant, Subramaniam Carolyn, Hurt Darrell E, Gaudreault Laurent, Subramaniam Sriram

机构信息

Laboratory of Cell Biology, Center for Cancer Research, National Cancer Institute, National Institutes of Health, USA.

出版信息

J Vis Exp. 2011 Dec 1(58):2770. doi: 10.3791/2770.

Abstract

Since its discovery nearly 30 years ago, more than 60 million people have been infected with the human immunodeficiency virus (HIV) (www.usaid.gov). The virus infects and destroys CD4+ T-cells thereby crippling the immune system, and causing an acquired immunodeficiency syndrome (AIDS) (2). Infection begins when the HIV Envelope glycoprotein "spike" makes contact with the CD4 receptor on the surface of the CD4+ T-cell. This interaction induces a conformational change in the spike, which promotes interaction with a second cell surface co-receptor (5,9). The significance of these protein interactions in the HIV infection pathway makes them of profound importance in fundamental HIV research, and in the pursuit of an HIV vaccine. The need to better understand the molecular-scale interactions of HIV cell contact and neutralization motivated the development of a technique to determine the structures of the HIV spike interacting with cell surface receptor proteins and molecules that block infection. Using cryo-electron tomography and 3D image processing, we recently demonstrated the ability to determine such structures on the surface of native virus, at ˜20 Å resolution (9,14). This approach is not limited to resolving HIV Envelope structures, and can be extended to other viral membrane proteins and proteins reconstituted on a liposome. In this protocol, we describe how to obtain structures of HIV envelope glycoproteins starting from purified HIV virions and proceeding stepwise through preparing vitrified samples, collecting, cryo-electron microscopy data, reconstituting and processing 3D data volumes, averaging and classifying 3D protein subvolumes, and interpreting results to produce a protein model. The computational aspects of our approach were adapted into modules that can be accessed and executed remotely using the Biowulf GNU/Linux parallel processing cluster at the NIH (http://biowulf.nih.gov). This remote access, combined with low-cost computer hardware and high-speed network access, has made possible the involvement of researchers and students working from school or home.

摘要

自近30年前被发现以来,已有超过6000万人感染了人类免疫缺陷病毒(HIV)(www.usaid.gov)。该病毒感染并破坏CD4+ T细胞,从而削弱免疫系统,引发获得性免疫缺陷综合征(AIDS)(2)。当HIV包膜糖蛋白“刺突”与CD4+ T细胞表面的CD4受体接触时,感染开始。这种相互作用会诱导刺突发生构象变化,进而促进与第二种细胞表面共受体的相互作用(5,9)。这些蛋白质相互作用在HIV感染途径中的重要性,使其在HIV基础研究以及寻求HIV疫苗方面具有深远意义。为了更好地理解HIV细胞接触和中和的分子尺度相互作用,人们开发了一种技术来确定与细胞表面受体蛋白以及阻断感染的分子相互作用的HIV刺突结构。利用冷冻电子断层扫描和3D图像处理技术,我们最近展示了在天然病毒表面以约20 Å分辨率确定此类结构的能力(9,14)。这种方法不仅限于解析HIV包膜结构,还可扩展到其他病毒膜蛋白以及脂质体上重构的蛋白。在本方案中,我们描述了如何从纯化的HIV病毒粒子开始,逐步制备玻璃化样品、收集冷冻电子显微镜数据、重构和处理3D数据体、对3D蛋白质子体积进行平均和分类以及解释结果以生成蛋白质模型,从而获得HIV包膜糖蛋白的结构。我们方法的计算方面被改编成模块,可通过美国国立卫生研究院(NIH)的Biowulf GNU/Linux并行处理集群(http://biowulf.nih.gov)进行远程访问和执行。这种远程访问,再加上低成本的计算机硬件和高速网络访问,使得来自学校或家中的研究人员和学生能够参与进来。

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