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Biology subjects

Blanchet, M.-R.

Publications and source records attributed to Blanchet, M.-R..

3 recordsLinked to original sources

SARS-CoV-2 Nsp2 reprograms host immunity to drive pathogenic inflammation

Despite the end of the COVID-19 pandemic, SARS-CoV-2 continues to circulate endemically, highlighting the need to better understand the viral determinants of pathogenesis. Non-structural protein 2 (Nsp2) has been implicated in host-virus interactions, yet its function remains poorly defined in the context of infection. Here, we generated a recombinant SARS-CoV-2 lacking Nsp2 ({Delta}Nsp2) to investigate its role in viral replication and disease. While {Delta}Nsp2 replicated comparably to wild-type virus in vitro and in vivo, its deletion resulted in markedly attenuated disease in K18-hACE2 mice. Wild-type infection induced a strong pro-inflammatory response associated with increased recruitment of monocytes and macrophages, whereas {Delta}Nsp2 infection promoted a more balanced antiviral response characterized by enhanced lymphocyte and NK cell recruitment. This was accompanied by reduced pulmonary and systemic inflammation and distinct transcriptional programs, including downregulation of pathways related to RNA processing and translation. Mechanistically, CLIP-seq and proximity labeling suggest that Nsp2 interacts with host RNA and components of the translational machinery. Together, our findings identify Nsp2 as a key virulence factor that drives immunopathology by skewing host immune responses, highlighting its role as a regulator of host-pathogen interactions. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=98 SRC="FIGDIR/small/723222v1_ufig1.gif" ALT="Figure 1"> View larger version (36K): org.highwire.dtl.DTLVardef@540e40org.highwire.dtl.DTLVardef@73c663org.highwire.dtl.DTLVardef@e5c535org.highwire.dtl.DTLVardef@f62d7f_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗

Indoor Rewilding of Laboratory Mice Recalibrates Pulmonary Mucosal Immunity and Mechanics

Laboratory mice raised under specific-pathogen-free (SPF) conditions experience restricted microbial and antigenic exposure, which favours an immature immune system and limits their translational value for respiratory research. While microbial enrichment in "dirty" mouse models restores immune maturation, its impact on integrated respiratory function and model transferability to human disease remains understudied. Here, we tested whether ecological exposure through indoor rewilding of SPF-reared mice could reshape immune complexity and recalibrate pulmonary physiology. Two-month-old female C57BL/6J mice were housed for three months under SPF or indoor-rewilding conditions and assessed for immune, mechanical, and systemic parameters. Rewilded mice exhibited expanded pulmonary immune subsets, increased dendritic-cell immune checkpoint, with TNF/IFN-{gamma} activation coupled to regulatory IL-10 signaling. Despite sustained exposure, the alveolar-capillary barrier integrity was preserved. Functionally, respiratory oscillometry revealed improved pulmonary mechanics, including lower airway resistance, higher compliance, and reduced airway responsiveness to methacholine. Systemic cytokine analyses indicated compartmentalized pulmonary immune activation, maintaining an overall anti-inflammatory balance. Importantly, PRIA screening detected no reportable pathogens introduced during rewilding, while cecal shotgun metagenomics confirmed microbial enrichment. Together, these findings demonstrate that indoor rewilding reestablishes coordinated lung immune and mechanical homeostasis in SPF-reared mice, providing a safe and scalable model for studying human-like mucosal immunity and respiratory physiology with broad implications for preclinical respiratory research and therapeutic testing.

immunology↗

Delayed viral clearance and altered inflammatory responses resulted in increased severity of SARS-CoV-2 infection in aged mice.

Since the onset of the COVID-19 pandemic, advanced age has emerged as a major predictor of disease severity. Epidemiological investigations consistently demonstrate an overrepresentation of the elderly in COVID-19 hospitalizations and fatalities. Despite this, a comprehensive understanding of the molecular mechanisms explaining how old age constitutes a critical risk factor remains elusive. To unravel this, we designed an animal study, juxtaposing the course of COVID-19 in young adults (2 months) and geriatric (15-22 months) mice. Both groups of K18(hACE2) mice were intranasally exposed to 500 TCID50 of the SARS-CoV-2 Delta variant with a variety of outcomes assessed on days 3, 5, and 7 post-infections (DPI). Analyses included pulmonary cytokines, RNA, viral loads, lipidomic profiles, and histological assessments, with a concurrent evaluation of the percentage of mice reaching humane endpoints. The findings unveiled notable distinctions between the two groups, with aged mice exhibiting impaired viral clearance at 7 DPI, correlating with diminished survival rates together with an absence of weight loss recovery at 6-7 DPI. Additionally, elderly-infected mice exhibited a deficient Th1 response characterized by diminished productions of IFNg, CCL2, CCL3, and CXCL9 relative to younger mice. Furthermore, mass-spectrometry analysis of the lung lipidome indicated altered expression of several lipids with immunomodulatory and pro-resolution effects in aged mice such as Resolvin, HOTrEs, and NeuroP, but also DiHOMEs-related ARDS. Collectively, disease severity implies a dysregulation of the antiviral response in elderly-infected mice relative to younger mice, resulting in compromised viral clearance and a more unfavorable prognosis. This underscores the potential efficacy of immunomodulatory treatments for elderly subjects experiencing symptoms of severe COVID-19. Author summaryIn this study, we investigated why older age is linked to more severe COVID-19 outcomes by comparing the progression of the disease in young (2 months) and elderly (15-22 months) K18(hACE2) mice infected with the SARS-CoV-2 Delta variant. After exposing both groups to the virus, we assessed various factors such as viral loads, immune responses, and lipid profiles in the lungs at different time points. Our findings revealed that elderly mice struggled to clear the virus by day 7 post-infection, leading to higher mortality rates and poorer recovery compared to younger mice. Aged mice showed weaker immune responses, with reduced production of key antiviral proteins like IFNg and certain chemokines. Lipid analysis also highlighted differences in molecules involved in immune regulation and lung protection, such as decreased levels of pro-resolving lipids and increased lipids associated with lung injury. These results suggest that older mice have a compromised antiviral defense, which could inform new therapeutic approaches for elderly patients with severe COVID-19.

microbiology↗