Nucleocytoviricota viral factories are transient organelles made by phase separation
Rigou, S.; Schmitt, A.; Lartigue, A.; Danner, L.; Giry, C.; Trabelsi, F.; Belmudes, L.; Olivero-Deibe, N.; Coute, Y.; Berois, M.; Legendre, M.; Jeudy, S.; Abergel, C.; Bisio, H.
Show abstract
Phase separation is a widespread mechanism in viral processes, mediating replication, host manipulation and virion morphogenesis. The phylum Nucleocytoviricota encompasses diverse and ubiquitous viruses, including Poxviridae, the climate-modulating Emiliania huxleyi virus and other so-called Giant Viruses. Cytoplasmic members of this phylum form viral factories but their nature has remained unresolved. Here, we demonstrate that these viral factories are formed by liquid-liquid phase separation. We prove that mimivirus viral factories are formed by multilayered phase separation, orchestrated by at least two scaffold proteins. To extend these findings across the phylum Nucleocytoviricota, we developed a bioinformatic pipeline to predict scaffold proteins based on a conserved molecular grammar, despite major primary sequence variability. Scaffold candidates were validated in Marseilleviridae and Poxviridae, highlighting a role of H5 as a scaffold protein in the vaccinia virus. Finally, we provide a repertoire of client proteins of the nucleus-like viral factory of mimivirus and demonstrate important sub-compartmentalization of functions, including those related to the central dogma. Overall, we reveal a new mechanism for an organelle to deploy nuclear-like functions entirely based on phase separation and re-classified phylum Nucleocytoviricota viral factories as biomolecular condensates.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Delta spike P681R mutation enhances SARS-CoV-2 fitness over Alpha variant 96%
- Human brain cell types shape host-rabies virus transcriptional interactions revealing a preexisting pro-viral astrocyte subpopulation 95%
- Rapidly evolving viral motifs target biophysically constrained binding pockets of host proteins 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.