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Biology subjects

Le Poder, S.

Publications and source records attributed to Le Poder, S..

5 recordsLinked to original sources

Mucin anchoring of SARS-CoV-2 neutralizing nanobinders increases intranasal antiviral efficacy

Respiratory viruses represent a major threat for human health, and despite effectiveness to limit the severity of the disease, they fail to block transmission. Recent advances have shown that the nasal cavity is the primal infection site of respiratory viruses, and thus represents a very attractive target for prophylactic treatment with antivirals in order to limit virus dissemination. However, mucociliary clearance limits the efficiency of a local treatment in the nasal cavity. We have previously developed a potent anti-Spike nanobinder blocking SARS-CoV-2 entry. Here, it was used as a proof of concept to show the strength of anchoring this synthetic antiviral to the mucin layer with a mucin-binding domain, increasing its residence time in the nasal cavity up to 6 hours post-instillation. This was very effective as a prophylactic treatment to limit infection of sentinel hamsters. Our strategy could be extended to antivirals against other major respiratory viruses such as RSV or influenza viruses, but also in other diseases by targeting specific epithelia increasing residence time and local concentration of the drug.

microbiology↗

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↗

Biosynthetic proteins targeting the SARS-CoV-2 spike as anti-virals

The binding of the SARS-CoV-2 spike to angiotensin-converting enzyme 2 (ACE2) promotes virus entry into the cell. Targeting this interaction represents a promising strategy to generate antivirals. By screening a phage-display library of biosynthetic protein sequences build on a rigid alpha-helicoidal HEAT-like scaffold (named Reps), we selected candidates recognizing the spike receptor binding domain (RBD). Two of them (F9 and C2) bind the RBD with affinities in the nM range, displaying neutralisation activity in vitro and recognizing distinct sites, F9 overlapping the ACE2 binding motif. The F9-C2 fusion protein and a trivalent Rep form (C2-foldon) display 0.1 nM affinities and EC50 of 8-18 nM for neutralization of SARS-CoV-2. In hamsters, F9-C2 instillation in the nasal cavity before or during infections effectively reduced the replication of a SARS-CoV-2 strain harbouring the D614G mutation in the nasal epithelium. Furthermore, F9-C2 and/or C2-foldon effectively neutralized SARS-CoV-2 variants (including delta and omicron variants) with EC50 values ranging from 13 to 32 nM. With their high stability and their high potency against SARS-CoV-2 variants, Reps provide a promising tool for SARS-CoV-2 therapeutics to target the nasal cavity and mitigate virus dissemination in the proximal environment. Author SummaryThe entry of SARS-CoV-2 in permissive cells is mediated by the binding of its spike to angiotensin-converting enzyme 2 (ACE2) on the cell surface. To select ligands able to block this interaction, we screened a library of phages encoding artificial proteins (named Reps) for binding to its receptor binding domain (RBD). Two of them were able to bind the RBD with high affinity and block efficiently the virus entry in cultured cells. Assembled Reps through covalent or non-covalent linkages blocked virus entry at lower concentration than their precursors (with around 20-fold activity increase for a trimeric Rep). These Reps derivates neutralize efficiently SARS-CoV-2 {beta}, {gamma}, {delta} and Omicron virus variants. Instillation of an Rep dimer in the nasal cavity effectively reduced virus replication in the hamster model of SARS-CoV-2 and pathogenicity.

microbiology↗

Melatonin drugs inhibit SARS-CoV-2 entry into the brain and virus-induced damage of cerebral small vessels

COVID-19 is a complex disease with short- and long-term respiratory, inflammatory and neurological symptoms that are triggered by the infection with SARS-CoV-2. Invasion of the brain by SARS-CoV-2 has been observed in humans and is postulated to be involved in post COVID condition. Brain infection is particularly pronounced in the K18-hACE2 mouse model of COVID-19. Here, we show that treatment of K18-hACE2 mice with melatonin and two melatonin-derived marketed drugs, agomelatine and ramelteon, prevent SARS-CoV-2 entry in the brain thereby reducing virus-induced damage of small cerebral vessels, immune cell infiltration and brain inflammation. Brain entry of SARS-CoV-2 through endothelial cells is prevented by melatonin through allosteric binding to human angiotensin-converting enzyme 2 (ACE2), which interferes with the cell entry receptor function of ACE2 for SARS-CoV-2. Our findings open new perspectives for the repurposing of melatonergic drugs in the prevention of brain infection by SARS-CoV-2 and COVID-19-related long-term neurological symptoms.

pharmacology and toxicology↗

Constitutive IFNα protein production in bats

Bats are the only mammals with self-powered flight and account for 20% of all extant mammalian diversity. In addition, they harbor many emerging and reemerging viruses, including multiple coronaviruses, several of which are highly pathogenic in other mammals, but cause no disease in bats. How this relationship between bats and viruses exists is not yet fully understood. Existing evidence supports a specific role for the innate immune system, in particular type I interferon (IFN) responses, a major component of antiviral immunity. Previous studies in bats have shown that components of the IFN pathway are constitutively activated at the transcriptional level. In this study, we tested the hypothesis that the type I IFN response in bats is also constitutively activated at the protein level. For this we utilized highly sensitive Single Molecule (Simoa) digital ELISA assays, previously developed for humans that we adapted to bat samples. We prospectively sampled four non-native chiroptera species from French zoos. We identified a constitutive expression of IFN protein in the circulation of healthy bats, and concentrations that are physiologically active in humans. Expression levels differed according to the species examined, but was not associated with age, sex, or health status suggesting constitutive IFN protein expression independent of disease. These results confirm a unique IFN response in bat species that may explain their ability to coexist with multiple viruses in the absence of pathology. These results may help to manage potential zoonotic viral reservoirs and potentially identify new anti-viral strategies.

zoology↗