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Biology subjects

Grin, P. M.

Publications and source records attributed to Grin, P. M..

2 recordsLinked to original sources

Interferon redundancy counteracts proteolytic inactivation by SARS-CoV-2 3CL main protease

Interferons (IFNs) are secreted during virus infection and induce antiviral responses through receptor-mediated phosphorylation of signal transducer and activator of transcription (STAT) proteins, leading to IFN-stimulated gene expression with antiviral activity. We previously reported that the SARS-CoV-2 main protease, 3CLpro, is secreted from infected cells through gasdermin D/E pores and retains proteolytic activity in human serum against extracellular substrates. Here, we show that 3CLpro selectively cleaves glycosylated IFN-L1, IFN-L2, and a rare naturally occurring variant of IFN-{gamma} (Arg160Gln), but does not cleave wild-type IFN-{gamma}, IFN-L3, IFN-L4, IFN-alpha proteins or IFN-{beta}. We identified sites of O-linked glycosylation of IFN-L1 at Thr137 and one or more threonines or serine in the sequence 24TSKPTTT30, and N-linked glycosylation at Asn65 that were indispensable for signaling. Unexpectedly, O-glycosylation was also required for the cleavage and inactivation of IFN-L1 by 3CLpro at two sites. Cleavage reduced STAT1 phosphorylation and impaired the induction of the IFN-stimulated proteins MX1, OAS2, and IFIT1. Although 3CLpro cleaved IFN-L2 proximal to its N-terminus at ARLH32{downarrow}GALP, cleavage neither disrupted signaling nor antiviral activity against SARS-CoV-2 and vesicular stomatitis virus. We further show that matrix metalloproteinases (MMPs) 2, 7, 8, and 12 degrade 3CLpro, whereas 3CLpro shows no activity against these MMPs.

biochemistry↗

Bovine-derived influenza A virus (H5N1) shows efficient replication in well-differentiated human nasal epithelial cells without requiring genetic adaptation

Highly pathogenic avian influenza (H5N1) viruses of clade 2.3.4.4b have caused significant losses among bird populations worldwide and have repeatedly crossed the species barrier, infecting mammals, including humans. However, efficient human-to-human transmission has not yet been observed. Here, we demonstrate that an H5N1 virus isolated from bovine milk in Texas in 2024 (H5N1Tex/24) replicates in differentiated human nasal epithelial cells as efficiently as a 2009 pandemic H1N1 virus strain (H1N1HH4/09) at both 37 {degrees}C and 33 {degrees}C. The adaptive mutations PB2-M631L and PA-K497R do not affect H5N1Tex/24 replication at 37 {degrees}C but promote replication at 33 {degrees}C. Conversely, H5N1BE/22, a virus from the same clade isolated from a pelican in 2022 that lacks these mutations, replicates in human nasal epithelial cells at 37 {degrees}C as efficiently as H5N1Tex/24 but exhibits limited replication at 33 {degrees}C. Introducing the two mutations PB2-M631L and PA-K497R did not overcome this limitation. Furthermore, nasal epithelial cells express receptors for both human and avian influenza viruses. Accordingly, no mutations were detected in HA which are known to switch receptor preference. Finally, we demonstrate that H5N1Tex/24 remains sensitive to the antiviral effects of interferon-{lambda} (IFN-{lambda}), however, infected nasal epithelial cells secrete only small amounts of this cytokine. Overall, our results suggest that H5N1Tex/24 possesses intrinsic traits enabling efficient replication in the human upper airways.

microbiology↗