Rahimi Amina, Varano A Cameron, Demmert Andrew C, Melanson Linda A, McDonald Sarah M, Kelly Deborah F
Virginia Tech Carilion Research Institute, Roanoke, VA, USA.
Virginia Tech Carilion Research Institute, Roanoke, VA, USA; Virginia Tech Carilion School of Medicine, Roanoke, VA, USA.
J Anal Mol Tech. 2015 Aug;2(1). doi: 10.13188/2474-1914.1000004. Epub 2015 Aug 17.
The molecular mechanisms by which RNA viruses coordinate their transcriptional activities are not fully understood. For rotavirus, an important pediatric gastroenteric pathogen, transcription occurs within a double-layered particle that encloses the viral genome. To date, there remains very little structural information available for actively-transcribing rotavirus double-layered particles, which could provide new insights for antiviral development. To improve our vision of these viral assemblies, we developed a new combinatorial strategy that utilizes currently available high-resolution image processing tools. First, we employed a 3D classification routine that allowed us to sort transcriptionally-active rotavirus assemblies on the basis of their internal density. Next, we implemented an additional 3D refinement procedure using the most active class of DLPs. For comparison, the refined structures were computed in parallel by (1) enforcing icosahedral symmetry, and by (2) using no symmetry operators. Comparing the resulting structures, we were able to visualize the continuum that exists between viral capsid proteins and the viral RNA for the first time.
RNA病毒协调其转录活动的分子机制尚未完全明确。轮状病毒是一种重要的儿科胃肠病原体,其转录发生在包裹病毒基因组的双层颗粒内。迄今为止,关于正在进行转录的轮状病毒双层颗粒的结构信息仍然非常少,而这些信息可能为抗病毒药物研发提供新的见解。为了更好地了解这些病毒组件,我们开发了一种新的组合策略,该策略利用了当前可用的高分辨率图像处理工具。首先,我们采用了一种三维分类程序,使我们能够根据其内部密度对具有转录活性的轮状病毒组件进行分类。接下来,我们使用最具活性的双层颗粒类别实施了额外的三维细化程序。为了进行比较,通过(1)强制二十面体对称和(2)不使用对称算子并行计算细化后的结构。比较所得结构,我们首次能够可视化病毒衣壳蛋白与病毒RNA之间存在的连续体。