Jesus Desyree Murta, Moussatche Nissin, Condit Richard C
Department of Molecular Genetics and Microbiology, University of Florida, Gainesville, Florida, USA
Department of Molecular Genetics and Microbiology, University of Florida, Gainesville, Florida, USA.
J Virol. 2014 Dec;88(24):14017-29. doi: 10.1128/JVI.02126-14. Epub 2014 Sep 24.
Electron micrographs from the 1960s revealed the presence of an S-shaped tubular structure in the center of the vaccinia virion core. Recently, we showed that packaging of virus transcription enzymes is necessary for the formation of the tubular structure, suggesting that the structure is equivalent to a nucleocapsid. Based on this study and on what is known about nucleocapsids of other viruses, we hypothesized that in addition to transcription enzymes, the tubular structure also contains the viral DNA and a structural protein as a scaffold. The vaccinia virion structural protein L4 stands out as the best candidate for the role of a nucleocapsid structural protein because it is abundant, it is localized in the center of the virion core, and it binds DNA. In order to gain more insight into the structure and relevance of the nucleocapsid, we analyzed thermosensitive and inducible mutants in the L4R gene. Using a cryo-fixation method for electron microscopy (high-pressure freezing followed by freeze-substitution) to preserve labile structures like the nucleocapsid, we were able to demonstrate that in the absence of functional L4, mature particles with defective internal structures are produced under nonpermissive conditions. These particles do not contain a nucleocapsid. In addition, the core wall of these virions is abnormal. This suggests that the nucleocapsid interacts with the core wall and that the nucleocapsid structure might be more complex than originally assumed.
The vaccinia virus nucleocapsid has been neglected since the 1960s due to a lack of electron microscopy techniques to preserve this labile structure. With the advent of cryo-fixation techniques, like high-pressure freezing/freeze-substitution, we are now able to consistently preserve and visualize the nucleocapsid. Because vaccinia virus early transcription is coupled to the viral core structure, detailing the structure of the nucleocapsid is indispensable for determining the mechanisms of vaccinia virus core-directed transcription. The present study represents our second attempt to understand the structure and biological significance of the nucleocapsid. We demonstrate the importance of the protein L4 for the formation of the nucleocapsid and reveal in addition that the nucleocapsid and the core wall may be associated, suggesting a higher level of complexity of the nucleocapsid than predicted. In addition, we prove the utility of high-pressure freezing in preserving the vaccinia virus nucleocapsid.
20世纪60年代的电子显微镜照片显示,痘苗病毒核心中央存在一种S形管状结构。最近,我们发现病毒转录酶的包装对于管状结构的形成是必需的,这表明该结构等同于核衣壳。基于这项研究以及对其他病毒核衣壳的已知信息,我们推测除了转录酶外,管状结构还包含病毒DNA和一种作为支架的结构蛋白。痘苗病毒结构蛋白L4是核衣壳结构蛋白角色的最佳候选者,因为它含量丰富,定位于病毒核心中央,并且能结合DNA。为了更深入了解核衣壳的结构和相关性,我们分析了L4R基因中的温度敏感型和诱导型突变体。使用用于电子显微镜的冷冻固定方法(高压冷冻后进行冷冻置换)来保存像核衣壳这样的不稳定结构,我们能够证明在缺乏功能性L4的情况下,在非允许条件下会产生内部结构有缺陷的成熟颗粒。这些颗粒不包含核衣壳。此外,这些病毒粒子的核心壁异常。这表明核衣壳与核心壁相互作用,并且核衣壳结构可能比最初设想的更复杂。
自20世纪60年代以来,由于缺乏保存这种不稳定结构的电子显微镜技术,痘苗病毒核衣壳一直被忽视。随着冷冻固定技术(如高压冷冻/冷冻置换)的出现,我们现在能够持续保存并观察到核衣壳。由于痘苗病毒早期转录与病毒核心结构相关联,详细描述核衣壳的结构对于确定痘苗病毒核心导向转录的机制是必不可少的。本研究是我们理解核衣壳结构和生物学意义的第二次尝试。我们证明了蛋白L4对于核衣壳形成的重要性,此外还揭示了核衣壳与核心壁可能相关联,这表明核衣壳的复杂性比预测的更高。此外,我们证明了高压冷冻在保存痘苗病毒核衣壳方面的效用。