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Panyain, N.

Publications and source records attributed to Panyain, N..

2 recordsLinked to original sources

Disrupting IFIT1-STAT2 viral evasion synergy yields live-attenuated flavivirus with enhanced immune priming

Diverse human viruses deploy a common immune-evasion strategy: viral 2-O-methylation coupled with STAT2 antagonism. Yet the importance of this coupling and whether targeting the coupled functions offers benefits in vaccine development, remains unknown. Using deep mutational scanning of the dengue NS5 protein, we discovered that the two immune-evasion functions work synergistically to cripple interferon signaling. Disrupting this synergy exposes a reciprocal regulatory relationship between the host proteins IFIT1 and STAT2 that controls both viral restriction and immune cell activation. Dengue viruses with mutations that disrupt the synergy are potently attenuated yet trigger antigen-presenting cell activation that exceeds a licensed dengue vaccine benchmark. Our results establish a generalizable principle: targeting synergies between viral immune evasion mechanisms can simultaneously achieve maximal viral attenuation and innate immune priming. This work provides a rational design framework for developing high-performance vaccines against many human viruses that exploit the IFIT1-STAT2 axis. TeaserBreaking synergistic viral immune evasion unlocks potent innate immunity for next-generation live-attenuated vaccines.

microbiology↗

SARS-CoV-2 shifts transcription of host gene to increase Spike acylation and boost infectivity

SARS-CoV-2 infection requires Spike protein mediating fusion between the viral and cellular membranes. The fusogenic activity of Spike requires its post-translational lipid modification by host S-acyltransferases, predominantly ZDHHC20. Previous observations indicate that SARS-CoV-2 infection augments the S-acylation of Spike when compared to transfection. Here, we find that SARS-CoV-2 infection triggers a change in the transcriptional start site of the zddhc20 gene, both in cells and in an in vivo infection model, resulting in a 67-amino-acid-long N-terminally extended protein with 37-times higher Spike acylating activity, leading to enhanced viral infectivity. Furthermore, we observed the same induced transcriptional change in response to other challenges, such as chemically induced colitis, indicating that SARS-CoV-2 hijacks an existing cell damage response pathway to generate more infectious viruses.

cell biology↗