Evilevitch Alex, Tsimtsirakis Efthymios
Department of Experimental Medical Science, Lund University, Lund, Sweden.
QRB Discov. 2021 Dec 20;3:e2. doi: 10.1017/qrd.2021.14. eCollection 2022.
The viral replication cycle is controlled by information transduced through both molecular and mechanical interactions. Viral infection mechanics remains largely unexplored, however, due to the complexity of cellular mechanical responses over the course of infection as well as a limited ability to isolate and probe these responses. Here, we develop an experimental system consisting of herpes simplex virus type 1 (HSV-1) capsids bound to isolated and reconstituted cell nuclei, which allows direct probing of capsid-nucleus mechanics with atomic force microscopy (AFM). Major mechanical transformations occur in the host nucleus when pressurised viral DNA ejects from HSV-1 capsids docked at the nuclear pore complexes (NPCs) on the nuclear membrane. This leads to structural rearrangement of the host chromosome, affecting its compaction. This in turn regulates viral genome replication and transcription dynamics as well as the decision between a lytic or latent course of infection. AFM probing of our reconstituted capsid-nucleus system provides high-resolution topographical imaging of viral capsid docking at the NPCs as well as force volume mapping of the infected nucleus surface, reflecting mechanical transformations associated with chromatin compaction and stiffness of nuclear lamina (to which chromatin is tethered). This experimental system provides a novel platform for investigation of virus-host interaction mechanics during viral genome penetration into the nucleus.
病毒复制周期由通过分子和机械相互作用转导的信息控制。然而,由于感染过程中细胞机械反应的复杂性以及分离和探测这些反应的能力有限,病毒感染机制在很大程度上仍未得到探索。在这里,我们开发了一个实验系统,该系统由与分离并重构的细胞核结合的单纯疱疹病毒1型(HSV-1)衣壳组成,这使得能够用原子力显微镜(AFM)直接探测衣壳与细胞核的力学特性。当受压的病毒DNA从停靠在核膜上核孔复合体(NPC)处的HSV-1衣壳中喷出时,宿主细胞核会发生主要的力学转变。这导致宿主染色体的结构重排,影响其压缩状态。这反过来又调节病毒基因组的复制和转录动态以及感染的裂解或潜伏进程的决定。对我们重构的衣壳-细胞核系统进行AFM探测,可以提供病毒衣壳停靠在NPC处的高分辨率形貌成像以及受感染细胞核表面的力体积映射,反映与染色质压缩和核纤层(染色质与之相连)硬度相关的力学转变。该实验系统为研究病毒基因组进入细胞核过程中的病毒-宿主相互作用机制提供了一个新的平台。