Purification of Murine Gammaherpesvirus 68 With Use of Differential Centrifugation

R. Hódosi, E. Nováková, M. Šupolíková
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Abstract

Abstract The method for separation of viral particles in a concentrated form from the environment is called virus purification. Viruses are required to be purified for a range of studies in which it is necessary to distinguish the properties or structure of a virus from the host cells or culture media, including analysis of viral polypeptide structures and membrane glycoprotein function. Our objective was to purify murine gammaherpesvirus 68 (MHV-68, MuHV-4) using the centrifuge, equipment and other materials available in our laboratory. After infection of baby hamster kidney 21 (BHK-21) cells with MHV-68 with the multiplicity of infection (MI) of 0.01 and following virus multiplication, we repeatedly froze and thawed the cell culture to disrupt the cells and release the virus particles into the culture medium. We used low-speed centrifugation (3000 rpm at 4°C) to separate the viral particles from cell debris. Subsequently, we transferred the supernatant containing virus particles to a fresh centrifuge tube and centrifuged at a speed of 8000 rpm (8801 g) and 11,000 rpm (=16,639 g) and at 4°C. We tested different centrifugation durations of 2, 4, 6 and 8 hours. To evaluate the quality of the obtained purified MHV-68 virus by this method and compare it to purified MHV-68 sample acquired by conventional ultracentrifugation on sucrose cushion (30%, w/v), we used the SDS-PAGE separation method using a 4%–20% (w/v) and 6%–14% (w/v) gradient gel. We obtained the best results with 6-hour-long centrifugation at 11,000 rpm. In conclusion, we managed to optimise virus purification method using the equipment available in our laboratory and prepared purified MHV-68 virus in sufficient concentration for determination of MHV-68 virus proteins.
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差速离心纯化小鼠γ疱疹病毒68
从环境中分离浓缩形式的病毒颗粒的方法称为病毒纯化。在一系列研究中,需要对病毒进行纯化,以区分病毒与宿主细胞或培养基的特性或结构,包括病毒多肽结构和膜糖蛋白功能的分析。我们的目的是利用离心机、设备和实验室提供的其他材料纯化小鼠γ疱疹病毒68 (MHV-68, MuHV-4)。在感染倍数(MI)为0.01的MHV-68感染幼鼠肾21 (BHK-21)细胞后,在病毒增殖后,反复冻融细胞培养液,破坏细胞,将病毒颗粒释放到培养基中。我们使用低速离心(3000 rpm, 4°C)将病毒颗粒从细胞碎片中分离出来。随后,我们将含有病毒颗粒的上清液转移到新鲜的离心管中,在4°C的条件下,以8801 g和11000 rpm (= 16639 g)的速度离心。我们测试了不同的离心时间为2、4、6和8小时。为了评价该方法纯化的MHV-68病毒的质量,并将其与常规在蔗糖缓冲液(30%,w/v)上超离心纯化的MHV-68样品进行比较,我们采用SDS-PAGE分离方法,采用4%-20% (w/v)和6%-14% (w/v)梯度凝胶分离。我们在11000 rpm下离心6小时获得了最好的结果。综上所述,我们利用实验室现有的设备优化了病毒纯化方法,并制备了足够浓度的纯化MHV-68病毒,用于检测MHV-68病毒蛋白。
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来源期刊
European Pharmaceutical Journal
European Pharmaceutical Journal Pharmacology, Toxicology and Pharmaceutics-Pharmacology, Toxicology and Pharmaceutics (all)
CiteScore
0.60
自引率
0.00%
发文量
16
期刊介绍: European Pharmaceutical Journal publishes only original articles not previously published and articles that are not being considered or have not been submitted for publication elsewhere. If parts of the results have been published as conference abstract or elsewhere, it should be stated in references. The ethical standards of the Helsinki-Tokio Declaration should be kept. This should be mentioned in the Methods of manuscript. Reviews are published only on request. Authors, whose submitted research work was performed with the support of a company, should indicate this in Conflict of Interest.
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