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一种带有荧光衣壳的β疱疹病毒,用于研究活细胞内的运输。

A beta-herpesvirus with fluorescent capsids to study transport in living cells.

机构信息

Max von Pettenkofer-Institute, Ludwig Maximilians University, Munich, Germany.

出版信息

PLoS One. 2012;7(7):e40585. doi: 10.1371/journal.pone.0040585. Epub 2012 Jul 11.

Abstract

Fluorescent tagging of viral particles by genetic means enables the study of virus dynamics in living cells. However, the study of beta-herpesvirus entry and morphogenesis by this method is currently limited. This is due to the lack of replication competent, capsid-tagged fluorescent viruses. Here, we report on viable recombinant MCMVs carrying ectopic insertions of the small capsid protein (SCP) fused to fluorescent proteins (FPs). The FPs were inserted into an internal position which allowed the production of viable, fluorescently labeled cytomegaloviruses, which replicated with wild type kinetics in cell culture. Fluorescent particles were readily detectable by several methods. Moreover, in a spread assay, labeled capsids accumulated around the nucleus of the newly infected cells without any detectable viral gene expression suggesting normal entry and particle trafficking. These recombinants were used to record particle dynamics by live-cell microscopy during MCMV egress with high spatial as well as temporal resolution. From the resulting tracks we obtained not only mean track velocities but also their mean square displacements and diffusion coefficients. With this key information, we were able to describe particle behavior at high detail and discriminate between particle tracks exhibiting directed movement and tracks in which particles exhibited free or anomalous diffusion.

摘要

通过遗传手段对病毒颗粒进行荧光标记,使我们能够在活细胞中研究病毒的动态。然而,目前通过这种方法研究β疱疹病毒的进入和形态发生受到限制。这是由于缺乏具有复制能力的、衣壳标记有荧光蛋白的荧光病毒。在这里,我们报告了带有异位插入小衣壳蛋白(SCP)融合荧光蛋白(FP)的可存活重组 MCMV。FP 被插入内部位置,允许产生有活力的、荧光标记的巨细胞病毒,这些病毒在细胞培养中以野生型动力学复制。荧光颗粒可以通过几种方法轻松检测到。此外,在扩散分析中,标记的衣壳在新感染细胞的核周围聚集,没有任何可检测到的病毒基因表达,表明正常进入和颗粒运输。这些重组病毒被用于通过活细胞显微镜在 MCMV 出芽过程中以高空间和时间分辨率记录颗粒动力学。从得到的轨迹中,我们不仅获得了平均轨迹速度,还获得了它们的均方位移和扩散系数。有了这些关键信息,我们就能够详细描述颗粒的行为,并区分表现出定向运动的颗粒轨迹和表现出自由或异常扩散的颗粒轨迹。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d8e1/3394720/683af94e0270/pone.0040585.g001.jpg

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