Eskelin Katri, Lampi Mirka, Meier Florian, Moldenhauer Evelin, Bamford Dennis H, Oksanen Hanna M
Department of Biosciences, University of Helsinki, Viikinkaari 9, 00014, Helsinki, Finland.
Postnova Analytics, Max-Planck-Str. 14, 86899, Landsberg, Germany.
Extremophiles. 2017 Nov;21(6):1119-1132. doi: 10.1007/s00792-017-0963-x. Epub 2017 Oct 10.
Viruses come in various shapes and sizes, and a number of viruses originate from extremities, e.g. high salinity or elevated temperature. One challenge for studying extreme viruses is to find efficient purification conditions where viruses maintain their infectivity. Asymmetrical flow field-flow fractionation (AF4) is a gentle native chromatography-like technique for size-based separation. It does not have solid stationary phase and the mobile phase composition is readily adjustable according to the sample needs. Due to the high separation power of specimens up to 50 µm, AF4 is suitable for virus purification. Here, we applied AF4 for extremophilic viruses representing four morphotypes: lemon-shaped, tailed and tailless icosahedral, as well as pleomorphic enveloped. AF4 was applied to input samples of different purity: crude supernatants of infected cultures, polyethylene glycol-precipitated viruses and viruses purified by ultracentrifugation. All four virus morphotypes were successfully purified by AF4. AF4 purification of culture supernatants or polyethylene glycol-precipitated viruses yielded high recoveries, and the purities were comparable to those obtained by the multistep ultracentrifugation purification methods. In addition, we also demonstrate that AF4 is a rapid monitoring tool for virus production in slowly growing host cells living in extreme conditions.
病毒有各种形状和大小,许多病毒源自极端环境,例如高盐度或高温环境。研究极端病毒面临的一个挑战是找到能使病毒保持感染力的高效纯化条件。不对称流场-流分级分离(AF4)是一种温和的类似天然色谱的基于尺寸的分离技术。它没有固定的固相,流动相组成可根据样品需求轻松调整。由于对高达50微米的样本具有高分离能力,AF4适用于病毒纯化。在此,我们将AF4应用于代表四种形态类型的嗜极端病毒:柠檬形、有尾和无尾二十面体,以及多形包膜病毒。AF4应用于不同纯度的输入样品:感染培养物的粗上清液、聚乙二醇沉淀的病毒以及通过超速离心纯化的病毒。所有四种病毒形态类型均通过AF4成功纯化。用AF4纯化培养上清液或聚乙二醇沉淀的病毒回收率很高,纯度与通过多步超速离心纯化方法获得的纯度相当。此外,我们还证明AF4是监测生活在极端条件下生长缓慢的宿主细胞中病毒产生的快速工具。