Virus propagation linked to exceedingly rare gene-expression errors
Luzon-Hidalgo, R.; D'Agostino, G.; Risso, V. A.; Delgado, A.; Ibarra-Molero, B.; Campos, L. A.; Requejo-Isidro, J.; Sanchez-Ruiz, J. M.
Show abstract
Viruses are obligate parasites that establish extensive interactions with proteins and other biomolecules of their hosts. About 20% of protein molecules bear phenotypic mutations due to errors during gene expression. Phenotypic mutations are not inherited and are not purged/amplified by natural selection. Therefore, protein variants harboring phenotypic mutations remain at very low levels. Here, we show that proteins at exceedingly low levels may enable virus propagation. Bacteriophage T7 recruits the host thioredoxin as an essential processivity factor for its replisome. Thioredoxin constitutive expression yields 10000-20000 molecules per E. coli cell. We inserted early stop codons in the thioredoxin gene and appended to its end the sequence encoding for a photoconvertible fluorescent protein. Virus propagation was not abolished, indicating that some thioredoxin molecules were produced through mistranscription or mistranslation. Single-molecule localization microscopy detected 12{+/-}5 molecules per cell when an ochre codon was inserted. This work demonstrates that crucial virus-host biomolecular interactions may need occur only a few times to trigger virus propagation and supports that viruses may exploit the wide diversity of host and viral protein variants arising from gene-expression errors to establish such interactions. Immediate implications of this notion for the mechanisms of cross-species transmission and antibody evasion are discussed.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- The SARS-CoV-2 nucleocapsid protein is dynamic, disordered, and phase separates with RNA 96%
- The host RNA polymerase II C-terminal domain is the anchor for replication of the influenza virus genome 96%
- Subcellular reorganization upon phage infection reveals stepwise assembly of viral particles from membrane-associated precursors 95%
Similar papers in this journal
- Arbitrium phages can manipulate each other's lysis - lysogeny decisions 95%
- Chimeric infective particles expand species boundaries in phage inducible chromosomal island mobilization 95%
- Deep mutational scanning of SARS-CoV-2 receptor binding domain reveals constraints on folding and ACE2 binding 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.