While gasdermin (GSDM)-mediated pyroptosis is a potent immune effector, its antiviral potential remains largely untapped. Here, we introduce viral protease-initiated lytic cell death (VID), a universal mRNA therapeutic platform inspired by the modular architecture of GSDM and the clinical success of mRNA vaccines. By engineering gasdermin-D (GSDMD) to harbor viral protease-specific cleavage motifs, we generated VID activators (VIDAs) that selectively trigger lytic cell death in virus-infected cells. Using hepatitis A virus (HAV) as a model, lipid nanoparticle (LNP)-encapsulated VIDA mRNA abolished viral replication and shedding in vivo and mitigated liver injury through a coordinated "kill-and-alert" mechanism that primes bystander immunity. The platform's versatility was further demonstrated against Zika virus (ZIKV) and SARS-CoV-2. Leveraging a generative artificial intelligence (AI) framework, we designed de novo cleavage motifs for the SARS-CoV-2 main protease, yielding optimized VIDAs with superior antiviral potency. Collectively, our study establishes VIDA mRNA as a versatile, broadly applicable strategy for combating diverse viral threats.
Lin Li, Xiu-Li Yan, Hao-Yang Wang et al.· Cell· 1 citation
Summary Influenza A virus (IAV) remains a major threat to human and animal health, while the emergence of drug-resistant strains necessitates new antiviral strategies. Here, we developed an integrative host-directed drug discovery framework combining functional genomics and pharmacotranscriptomics. By aggregating published genome-wide screens, we assigned host genes functional scores reflecting their effects on IAV replication and used these scores to estimate the antiviral status of host cells. Screening nearly 20,000 drug-induced transcriptional signatures identified compounds that shift host gene expression toward an antiviral state. Among 54 selected hits, 18 showed anti-IAV activity. Notably, lithocholic acid and ALW-II-49-7 inhibited viral replication in vitro and protected mice from lethal infection in vivo. This host-targeted framework provides a systematic and scalable strategy for discovering antivirals that are less susceptible to resistance and potentially applicable to other rapidly evolving pathogens.
Jianfa Qiu, Xuecong Xing, Jing-Feng Wang et al.· iScience· 0 citations