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Messyasz, A.

Publications and source records attributed to Messyasz, A..

2 recordsLinked to original sources

Characterization of betacoronavirus HKU-1 and OC43 internal proteins using a prototypic coronavirus

Coronaviruses express a repertoire of accessory proteins for evading host immune responses. A small internal (I) accessory protein is expressed by the genus Betacoronavirus. Previous studies reported that the I proteins of SARS-CoV, MERS-CoV and SARS-CoV-2 inhibit type I interferon (IFN-I) expression through distinct mechanisms and have different roles in pathogenesis. Human coronaviruses (hCoV) HKU1 and OC43 are betacoronaviruses that also encode the I protein as an accessory protein. Although hCoV-HKU1 and hCoV-OC43 predominantly cause common cold in healthy adults, susceptible individuals infected with these viruses can develop severe disease. However, the virulence factors contributing to pathogenesis after infection with common cold CoVs (CCCoVs) have not been fully characterized. In particular, the functions of the hCoV-HKU1 and hCoV-OC43 I proteins have not been previously reported. The lack of robust reverse genetic systems, tissue culture and animal models limit the study of hCoV-HKU1 and hCoV-OC43 pathogenesis. Here, we examine the role of the hCoV-HKU1 and hCoV-OC43 I proteins in pathogenesis using a prototypic coronavirus. We introduce the I proteins of hCoV-HKU1 and hCoV-OC43 independently to a neurotropic strain of mouse hepatitis virus (J2.2). J2.2 infection is well characterized with clearly defined immune responses which allows the study of I proteins in the context of authentic coronavirus infection. We show that the I protein of hCoV-HKU1, but not that of hCoV-OC43, ameliorates MHV-J2.2 pathogenesis while the I protein of MERS-CoV exacerbates disease. The presence of the hCoV-HKU1 I protein decreases virus titers and cytokine expression while the I protein of MERS-CoV leads to increased immune cell infiltration and virus titers in mice after J2.2 infection. Moreover, the I proteins of hCoV-HKU1 and hCoV-OC43 show different patterns of subcellular localization. Overall, our findings suggest that the I protein of different betacoronaviruses play unique roles in pathogenesis. Author SummaryFactors governing the differences in the pathogenicity between highly pathogenic human coronaviruses (SARS-CoV, MERS-CoV and SARSR-CoV-2) and seasonal coronaviruses (hCoV-HKU1 and hCoV-OC43) are not completely understood. These differences are at least in part contributed to by the accessory proteins encoded between these two groups of human coronaviruses. The use of a heterologous coronavirus infection model provides an isogenic background for the direct comparison of viral proteins encoded by various coronaviruses. In this study, we compare the role of one of the accessory proteins encoded by betacoronaviruses, the I protein, in mediating disease outcome using a prototypic coronavirus. We demonstrate that the I protein of the highly pathogenic MERS-CoV but not that of the seasonal coronaviruses HKU1 and OC43 contributes to enhanced disease in the context of MHV-J2.2 infection, highlighting that virus-specific functions of accessory proteins encoded by different hCoVs.

microbiology↗

Helminth infection favors reprogramming and proliferation of lung neutrophils

Neutrophils are a granulocytic population of myeloid cells that have critical effector functions during infectious disease but are generally thought to be short-lived and nonproliferative with markedly limited activation states. In these studies, we directly compared lung neutrophil activation following infection with different groups of pathogens including bacteria, fungi, and helminths. Our results demonstrate considerable heterogeneity depending on the type of infectious agent. In contrast to bacterial and fungal infection, after helminth infection neutrophils expressed markers associated with characteristic type 2 responses and unexpectedly upregulated genes associated with cell cycling and protein synthesis. Further studies showed reduced neutrophil cell death following helminth infection and increased proliferation, which was dependent on IL-4R signaling. This distinct subset of proliferating neutrophils expanded following helminth infection and was released from the endothelial niche to colocalize with invading parasites in the airways. These studies demonstrate a novel long-lived cycling phenotype for neutrophils following helminth infection.

immunology↗