Key result
HSV-1 protein VP22 compensates for ribosomal insufficiency by associating with polyribosomes to support viral replication.
The HSV-1 protein VP22 associates with polyribosomes to compensate for ribosomal protein insufficiency, revealing a novel class of viral effectors that support translation during physiological stress.
No immediate clinical implications from this animal study; leaves open whether VP22-like mechanisms can be targeted in antiviral development.
SUMMARY In addition to being required for protein synthesis, ribosomes and ribosomal proteins (RPs) also regulate mRNA translation in uninfected and virus-infected cells. By individually depleting 85 RPs using RNAi, we found overall protein synthesis in uninfected primary fibroblasts was more sensitive to RP-depletion than those infected with herpes simplex virus-1 (HSV-1). Although representative RP-depletion (uL3, uS4, uL5) inhibited protein synthesis in cells infected with other DNA viruses, HSV-1-infected cell protein synthesis unexpectedly endured and required a single virus-encoded gene product, VP22. During individual RP-insufficiency, VP22-expressing HSV-1 replicated better than a VP22-deficient variant. Furthermore, VP22 cosedimented with ribosomes and polyribosomes in infected cells. This identifies VP22 as a virus-encoded, polyribosome-associated protein that compensates for RP-insufficiency to support viral protein synthesis and replication. Moreover, it reveals an unanticipated class of virus-encoded, ribosome-associated effectors that reduce the dependence of protein synthesis upon RPs and broadly support translation during physiological stress such as infection.
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Vink et al. (2020) studied HSV-1 infection. VP22 expression vs. VP22-deficient variant was evaluated on Protein synthesis and viral replication. The HSV-1-encoded protein VP22 compensates for ribosomal protein insufficiency by associating with polyribosomes to support viral protein synthesis and replication.
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