Vaccinia virus induces EMT-like transformation and RhoA-mediated mesenchymal migration.
Wei LiuJia-Yin LuYa-Jun WangXin-Xin XuYu-Chen ChenSai-Xi YuXiao-Wei XiangXue-Zhu ChenYaming JiuHai GaoMengyao ShengZheng-Jun ChenXinyao HuDong LiPaolo MaiuriXinxin HuangTianlei YingGuo-Liang XuDai-Wen PangZhi-Ling ZhangBao-Hong LiuYan-Jun LiuPublished in: Journal of medical virology (2023)
The emerging outbreak of monkeypox is closely associated with the viral infection and spreading, threatening global public health. Virus-induced cell migration facilitates viral transmission. However, the mechanism underlying this type of cell migration remains unclear. Here we investigate the motility of cells infected by vaccinia virus (VACV), a close relative of monkeypox, through combining multi-omics analyses and high-resolution live-cell imaging. We find that, upon VACV infection, the epithelial cells undergo epithelial-mesenchymal transition-like transformation, during which they lose intercellular junctions and acquire the migratory capacity to promote viral spreading. After transformation, VACV-hijacked RhoA signaling significantly alters cellular morphology and rearranges the actin cytoskeleton involving the depolymerization of robust actin stress fibers, leading-edge protrusion formation, and the rear-edge recontraction, which coordinates VACV-induced cell migration. Our study reveals how poxviruses alter the epithelial phenotype and regulate RhoA signaling to induce fast migration, providing a unique perspective to understand the pathogenesis of poxviruses.
Keyphrases
- cell migration
- epithelial mesenchymal transition
- high resolution
- public health
- high glucose
- diabetic rats
- sars cov
- induced apoptosis
- stem cells
- bone marrow
- transforming growth factor
- oxidative stress
- endothelial cells
- mass spectrometry
- cell cycle arrest
- photodynamic therapy
- biofilm formation
- staphylococcus aureus
- cell death
- heat stress
- tandem mass spectrometry