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Ciabattoni, G. O.

Publications and source records attributed to Ciabattoni, G. O..

2 recordsLinked to original sources

SARS-CoV-2 ORF8 modulates the upper respiratory tract inflammatory response to facilitate transmission

The ability of respiratory viruses to exploit host immune responses to promote transmission is a defining feature of pandemics. SARS-CoV-2 remains a major global public health threat because of its persistent evolution and capacity to counteract evolving immune defenses. Although the immune evasion properties of the SARS-CoV-2 Spike protein are well characterized, the contributions of other viral proteins to transmission remain poorly understood. Here, we used the infant mouse model to define the role of the accessory protein ORF8 in SARS-CoV-2 spread. We demonstrate that ORF8 supports efficient upper respiratory tract (URT) infection, infectious virus shedding, and host-to-host transmission. Mice infected with a recombinant SARS-CoV-2 strain lacking ORF8 (r{Delta}ORF8) had less infectious virus recovered from URT tissues and nasal secretions and transmitted less efficiently than mice infected with the isogenic ancestral strain rWA-1, which contains an intact ORF8. Recombinant viruses encoding naturally occurring ORF8 mutations exhibited distinct transmission phenotypes, with ORF8-deficient viruses resembling r{Delta}ORF8. Infection with ORF8-sufficient viruses induced greater macrophage recruitment, inflammatory cytokine production, and type-I interferon (IFN-I) signaling programs than ORF8-deficient viruses. Intranasal IFN{beta} supplementation partially restored URT shedding by r{Delta}ORF8-infected mice and rescued transmission to contacts, whereas blockade of the type I interferon receptor (IFNAR) in rWA-1-infected index mice reduced contact infection and transmission. Together, these findings demonstrate that ORF8 promotes SARS-CoV-2 transmission by engaging an IFN-I-associated inflammatory and secretory program in the URT that supports virus shedding from the infected host. These data identify ORF8 as a viral determinant of host mucosal responses that promote contagiousness. ImportanceEfficient host-to-host transmission underlies the success of respiratory viruses. Although SARS-CoV-2 research has largely focused on the Spike protein, accessory proteins can also shape viral fitness and spread. We previously identified ORF8 as a determinant of SARS-CoV-2 transmission. Here we show that ORF8 promotes SARS-CoV-2 infectious viral shedding and transmission by engaging IFN-I-associated inflammatory and secretory responses in the URT. These findings reveal how a SARS-CoV-2 accessory protein can exploit mucosal antiviral responses to increase host contagiousness.

microbiology↗

IFNγ-Driven Inflammatory Responses in the Nasal Mucosa Drive Influenza Virus Shedding and Transmission

What determines host infectiousness during influenza A virus (IAV) infection remains a fundamental unanswered question in virology. While upper respiratory tract (URT) replication is necessary for transmission, its insufficient to explain host-to-host variation in contagiousness. Using the infant mouse model of influenza transmission, we show that viruses containing H3 hemagglutinin shed at higher levels than non-H3-containing viruses, despite comparable URT replication. H3-containing virus infection was associated with higher URT inflammation, characterized by increased cytokine production, immune cell recruitment, and mucus hypersecretion, which directly correlated with shedding efficiency. Transcriptomic profiling identified enrichment of interferon-stimulated gene programs, with a dominant interferon gamma (IFN{gamma}) signature during H3 infections. Functional studies demonstrated that IFN{gamma} deficiency reduced mucus production, shedding, and transmission, whereas IFN{gamma} supplementation restored these phenotypes. Together, these findings identify IFN{gamma}-driven mucosal inflammation key host determinant of influenza infectiousness, reframing contagiousness as a consequence of host inflammatory clearance rather than viral replication alone.

microbiology↗