Combinatorial interactions between viral proteins expand the functional landscape of the viral proteome
Wang, L.; Tan, H.; Medina-Puche, L.; Wu, M.; Garnelo Gomez, B.; Gao, M.; Shi, C.; Jimenez Gongora, T.; Fan, P.; Ding, X.; Zhang, D.; Ding, Y.; Rosas-Diaz, T.; Liu, Y.; Aguilar, E.; Fu, X.; Lozano-Duran, R.
Show abstract
As intracellular parasites, viruses need to manipulate the molecular machinery of their host cells in order to enable their own replication and spread. This manipulation is based on the activity of virus-encoded proteins. The reduced size of viral genomes imposes restrictions in coding capacity; how the action of the limited number of viral proteins results in the massive cell reprogramming observed during the viral infection is a long-standing conundrum in virology. In this work, we explore the hypothesis that combinatorial interactions expand the multifunctionality of viral proteins, which may exert different activities individually and when in combination, physical or functional. We show that the proteins encoded by a plant-infecting DNA virus physically associate with one another in an intricate network. Our results further demonstrate that these interactions can modify the subcellular localization of the viral proteins involved, and that co-expressed interacting viral proteins can exert novel biological functions in planta that go beyond the sum of their individual functions. Based on this, we propose a model in which combinatorial physical and functional interactions between viral proteins enlarge the functional landscape of the viral proteome, which underscores the importance of studying the role of viral proteins in the context of the infection.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Maf/ham1-like pyrophosphatases of non-canonical nucleotides are host-specific partners of viral RNA-dependent RNA polymerases 96%
- A novel ilarvirus protein is expressed via stop codon readthrough and suppresses RDR6-dependent RNA silencing 96%
- Mobilization of nuclear antiviral factors by Exportin XPO1 via the actin network inhibits RNA virus replication 95%
Similar papers in this journal
- A virus-encoded protein suppresses methylation of the viral genome in the Cajal body through its interaction with AGO4 98%
- Host casein kinase 1-mediated phosphorylation modulates phase separation of a rhabdovirus phosphoprotein and virus infection 96%
- Structural features stabilized by divalent cation coordination within hepatitis E virus ORF1 are critical for viral replication 94%
Similar papers in this journal
- dsRNA-induced immunity targets plasmodesmata and is suppressed by viral movement proteins 96%
- The Xanthomonas type-III effector protein XopS stabilizes CaWRKY40a to regulate defense hormone responses and preinvasion immunity in pepper (Capsicum annuum) 96%
- Immunocapture of dsRNA-bound proteins provides insight into tobacco rattle virus replication complexes and reveals Arabidopsis DRB2 to be a wide-spectrum antiviral effector 94%
Similar papers in this journal
- The Tomato brown rugose fruit virus movement protein overcomes Tm-22 resistance while attenuating viral transport 96%
- Optimizing the PBS1 Decoy System to Confer Resistance to Potyvirus Infection in Arabidopsis and Soybean 95%
- Characterization of Rose rosette virus and development of reverse genetic system for studying virus accumulation and movement in whole plants. 93%
Similar papers in this journal
- Geminiviral genomes encode additional proteins with specific subcellular localizations and virulence function 98%
- Conservation of molecular responses upon viral infection in the non-vascular plant Marchantia polymorpha 96%
- The S1/S2 boundary of SARS-CoV-2 spike protein modulates cell entry pathways and transmission 94%
"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.