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Ando-Grard, O.

Publications and source records attributed to Ando-Grard, O..

2 recordsLinked to original sources

SARS-CoV-2 Delta variant induces severe damages in the nasal cavity from the first day post-infection in the Syrian hamster model.

SARS-CoV-2 replication initiates in the nasal cavity and can spread to the lower respiratory tract. However, the early physiopathological events that occur in the nasal cavity after infection remain poorly understood. In this study, we investigated the initial steps of viral infection from 1 day post-infection (dpi) in Syrian hamsters infected with SARS-CoV-2 D614G, Delta and Omicron (BA.1) variants and compared them with animals sacrificed at 4 dpi. While the level of viral replication in the nasal turbinates of the three groups of hamsters was equivalent at 4dpi, the amount of viral RNA at 1dpi was higher in D614G- and Delta-infected animals than in the Omicron group. No difference in viral RNA levels or inflammatory markers in the nasal turbinates was observed between D614G- and Delta-infected animals, except for a significantly higher level of IFN-{lambda} in the Delta group at 1dpi. Additionally, histological analysis revealed a more rapid diffusion of the Delta virus reaching the posterior zone of the nasal cavity at 1dpi inducing significant damage to the olfactory epithelium. At the same time, the D614G and Omicron infections were essentially restricted to the anterior part of the nasal cavity with less damage observed. Consistently, viral replication was already effective in the lungs of all Delta- infected hamsters at 1 dpi, but only in two of the six D614G animals. Our results highlight the importance of studying viral infection in the nasal cavity very early after infection with a spatial approach to better understand the physiopathology of the different SARS-CoV-2 variants.

microbiology↗

Neutrophils initiate the destruction of the olfactory epithelium during SARS-CoV-2 infection in hamsters

The loss of smell related to SARS-CoV-2 infection is one of the most prevalent symptoms of COVID-19. It is now clear that this symptom is related to the massive infection by SARS-CoV-2 of the olfactory epithelium leading to its desquamation. However, the molecular mechanism behind the destabilization of the olfactory epithelium is less clear. Using golden Syrian hamster, we show here that while apoptosis remains at a low level in damaged infected epithelium, the latter is invaded by innate immunity cells. By depleting the neutrophil population or blocking the activity of neutrophil elastase-like proteinases, we reduced the damage induced by the SARS-CoV-2 infection. Surprisingly, the impairment of neutrophil activity led to a decrease of SARS-CoV-2 infection levels in the nasal cavity. Our results indicate a counterproductive role of neutrophils leading to the release of infected cells in the lumen of the nasal cavity and thereby enhanced spreading of the virus.

immunology↗