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Published on: October 27, 2019
Membrane assembly during the infection cycle of the giant Mimivirus
Yael Mutsafi1, Eyal Shimoni, Amir Shimon
1Department of Structural Biology, The Weizmann Institute of Science, Rehovot, Israel. yael.mutsafi@weizmann.ac.il
Abstract:
Although extensively studied, the structure, cellular origin and assembly mechanism of internal membranes during viral infection remain unclear. By combining diverse imaging techniques, including the novel Scanning-Transmission Electron Microscopy tomography, we elucidate the structural stages of membrane biogenesis during the assembly of the giant DNA virus Mimivirus. We show that this elaborate multistage process occurs at a well-defined zone localized at the periphery of large viral factories that are generated in the host cytoplasm. Membrane biogenesis is initiated by fusion of multiple vesicles, ~70 nm in diameter, that apparently derive from the host ER network and enable continuous supply of lipid components to the membrane-assembly zone. The resulting multivesicular bodies subsequently rupture to form large open single-layered membrane sheets from which viral membranes are generated. Membrane generation is accompanied by the assembly of icosahedral viral capsids in a process involving the hypothetical major capsid protein L425 that acts as a scaffolding protein. The assembly model proposed here reveals how multiple Mimivirus progeny can be continuously and efficiently generated and underscores the similarity between the infection cycles of Mimivirus and Vaccinia virus. Moreover, the membrane biogenesis process indicated by our findings provides new insights into the pathways that might mediate assembly of internal viral membranes in general.
Insights
Giant Mimivirus assembly involves a novel multistage membrane biogenesis process originating from host ER vesicles. This study clarifies viral factory membrane formation and progeny generation, revealing similarities with Vaccinia virus.
Area of Science:
- Virology
- Cell Biology
- Microscopy
Background:
- The structure, origin, and assembly of internal viral membranes during infection are poorly understood.
- Giant DNA viruses like Mimivirus present unique challenges for studying viral replication mechanisms.
Purpose of the Study:
- To elucidate the structural stages and mechanism of membrane biogenesis during Mimivirus assembly.
- To investigate the cellular origin of membranes and their role in viral factory formation.
Main Methods:
- Utilized diverse imaging techniques, including novel Scanning-Transmission Electron Microscopy tomography.
- Combined structural analysis with observation of viral factories within host cytoplasm.
Main Results:
- Identified a specific membrane assembly zone at the periphery of Mimivirus factories.
- Demonstrated membrane biogenesis initiated by fusion of host ER-derived vesicles, forming multivesicular bodies that rupture into membrane sheets.
- Observed viral capsid assembly, involving protein L425, concurrent with membrane generation.
Conclusions:
- Proposed a model for continuous and efficient generation of Mimivirus progeny.
- Highlighted similarities between Mimivirus and Vaccinia virus infection cycles.
- Provided new insights into general pathways for internal viral membrane assembly.
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