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Biomedical subjects

Craig B Wilen

Publications and source records attributed to Craig B Wilen.

5 recordsLinked to original sources

RNA structures regulate norovirus life cycle and enable rational attenuation in vivo.

Viral genomes encode regulatory RNA structures that orchestrate key steps of viral replication and gene expression. Although these structures are increasingly recognized as critical regulators of viral function, their systematic characterization in an infection context and roles in regulating viral fitness and immune recognition in vivo remain limited. Here, we systematically map and functionally interrogate structured RNA elements across the murine norovirus genome using orthogonal in-cell chemical probing, revealing conserved motifs that regulate viral function. Targeted disruption of specific structural elements reduces viral replication in cell culture, modulates translation in cis, and decreases viral RNA levels in animal infection models. These findings enabled the rational design of a genetically stable, attenuated virus that elicits protective immunity and limits viral replication upon secondary challenge. Together, this work uncovers essential roles for RNA structure in norovirus biology and establishes a generalizable framework for RNA structure-guided design of antiviral vaccines and therapeutics.

RNA structure

IgA is necessary and sufficient to prevent norovirus infection in mice.

Human norovirus is the leading cause of viral gastroenteritis, yet effective vaccines and therapeutics remain elusive. Using murine norovirus as a model, we found that mucosal immunoglobulin A (IgA) is both necessary and sufficient for protection against infection, whereas CD8+ T cells are dispensable. Robust intestinal IgA production requires at least 4 weeks of enteric infection, consistent with kinetics of human norovirus RNA clearance. Systemic vaccination elicits high titers of neutralizing serum IgG but fails to prevent enteric norovirus infection, phenocopying a recent human norovirus vaccine failure. In contrast, prophylactic delivery of dimeric anti-norovirus IgA via mRNA lipid nanoparticles confers sterilizing immunity. Together, these findings define a critical role for mucosal IgA in norovirus protection and identify IgA-based treatments as a therapeutic approach for human norovirus.

Animals

Cysteinyl leukotrienes stimulate gut absorption of food allergens to promote anaphylaxis in mice.

Food-specific immunoglobulin E (IgE) triggers life-threatening anaphylaxis; however, for unclear reasons, some people with food-specific IgE are asymptomatic upon allergen consumption. We studied strains of mice with different sensitivities to anaphylaxis when orally challenged with allergen to identify possible causes. In resistant C57BL/6 mice, intestinal goblet cells transported less food allergen than did anaphylaxis-susceptible strains, even before allergic sensitization. In a forward genetic screen, resistance was correlated with dipeptidase 1 (Dpep1) variants. DPEP1 is expressed in intestinal epithelium and catabolizes leukotriene D4 (LTD4). Blocking DPEP1 with cilastatin, deleting Dpep1, or administering LTD4 orally enhanced allergen transport in resistant mice. Conversely, pretreatment of susceptible mice with a synthesis inhibitor, zileuton, abrogated allergen absorption and oral anaphylaxis, indicating that this could be an approach to treating food allergy.

Animals

Intranasal neomycin evokes broad-spectrum antiviral immunity in the upper respiratory tract.

Respiratory virus infections in humans cause a broad-spectrum of diseases that result in substantial morbidity and mortality annually worldwide. To reduce the global burden of respiratory viral diseases, preventative and therapeutic interventions that are accessible and effective are urgently needed, especially in countries that are disproportionately affected. Repurposing generic medicine has the potential to bring new treatments for infectious diseases to patients efficiently and equitably. In this study, we found that intranasal delivery of neomycin, a generic aminoglycoside antibiotic, induces the expression of interferon-stimulated genes (ISGs) in the nasal mucosa that is independent of the commensal microbiota. Prophylactic or therapeutic administration of neomycin provided significant protection against upper respiratory infection and lethal disease in a mouse model of COVID-19. Furthermore, neomycin treatment protected Mx1 congenic mice from upper and lower respiratory infections with a highly virulent strain of influenza A virus. In Syrian hamsters, neomycin treatment potently mitigated contact transmission of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). In healthy humans, intranasal application of neomycin-containing Neosporin ointment was well tolerated and effective at inducing ISG expression in the nose in a subset of participants. These findings suggest that neomycin has the potential to be harnessed as a host-directed antiviral strategy for the prevention and treatment of respiratory viral infections.

Animals

Genome-wide bidirectional CRISPR screens identify mucins as host factors modulating SARS-CoV-2 infection.

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) causes a range of symptoms in infected individuals, from mild respiratory illness to acute respiratory distress syndrome. A systematic understanding of host factors influencing viral infection is critical to elucidate SARS-CoV-2-host interactions and the progression of Coronavirus disease 2019 (COVID-19). Here, we conducted genome-wide CRISPR knockout and activation screens in human lung epithelial cells with endogenous expression of the SARS-CoV-2 entry factors ACE2 and TMPRSS2. We uncovered proviral and antiviral factors across highly interconnected host pathways, including clathrin transport, inflammatory signaling, cell-cycle regulation, and transcriptional and epigenetic regulation. We further identified mucins, a family of high molecular weight glycoproteins, as a prominent viral restriction network that inhibits SARS-CoV-2 infection in vitro and in murine models. These mucins also inhibit infection of diverse respiratory viruses. This functional landscape of SARS-CoV-2 host factors provides a physiologically relevant starting point for new host-directed therapeutics and highlights airway mucins as a host defense mechanism.

Animals