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Chalen, I.

Publications and source records attributed to Chalen, I..

2 recordsLinked to original sources

Maternal IL-17A administration fails to disrupt fetal cortical lamination in the absence of maternal microbes

Maternal inflammation during pregnancy can disrupt fetal neurodevelopment and contribute to the pathogenesis of neurodevelopmental disorders. Interleukin-17A (IL-17A) has emerged as a potential mediator linking maternal immune activation (MIA) to neurodevelopmental abnormalities in offspring. Production of this cytokine is in-part regulated by the maternal gastrointestinal microbiome. However, it remains unclear whether IL-17A alone is sufficient to induce offspring brain abnormalities independent of maternal microbial signals. This study tests the potential for IL-17A to mediate fetal brain cortical architecture through administration of recombinant (r)IL-17A to pregnant germ-free (GF) dams. Pregnant GF mice received daily intraperitoneal injections of rIL-17A for six days, covering the mid- to latter half of the gestational period. Placental tissue was processed for histopathological evaluation, and cortical lamination was examined in the fetal brain using gold-standard immunohistochemical approaches. Spatial Light Interference Microscopy (SLIM), a novel label-free imaging technique, was employed to further quantify cortical architecture. This is the first report of SLIM imaging performed in the mouse embryonic brain. Overall, administration of rIL-17A to pregnant GF dams during mid-to-late gestation resulted in normal placental morphology and fetal cortical lamination patterns, suggesting that IL-17A alone is insufficient for altering cortical neurodevelopment, at least at this gestational timepoint. These findings highlight the importance of accounting for the maternal microbiome when interpreting the impacts of prenatal inflammation on brain development in utero.

neuroscience↗

Influenza A virus infection during pregnancy increases transfer of maternal bloodborne molecules to fetal tissues

Influenza A virus (IAV) infection during pregnancy is linked to heightened risk for neurodevelopmental disorders (NDDs) in the offspring. The precise pathophysiological mechanism(s) underling this association remains an active topic of research. We propose that maternal immune activation (MIA) triggered by IAV infection can disrupt selective permeability at the maternal-fetal interface, leading to increased transfer of blood-derived molecules into the fetal compartment. Some of these molecules might be responsible for the initiation of inflammatory cascades implicated in NDD etiology. Using a murine model of seasonal IAV infection during pregnancy, we examined placental and fetal brain barrier properties following maternal IAV challenge. Our findings demonstrate an enhanced transplacental transfer of fluorescently labeled tracers from maternal circulation to key neurodevelopmental regions, including the subventricular zone (SVZ) and choroid plexus (ChP) of fetal brains. This effect was most pronounced in fetuses from dams exposed to the highest dose of IAV. Notably, a similar pattern was observed for accumulation of the bloodborne neuroinflammatory molecule fibrinogen in these same brain regions, which was further amplified in response to the highest IAV dose. Moreover, fibrinogen accumulation was positively correlated with Iba1+ cell immunofluorescence, suggesting a potential interaction between fibrinogen and Iba1+ cells. Collectively, these findings suggest that IAV-induced MIA enhances transplacental transfer of blood-derived molecules into fetal tissues, potentially activating proinflammatory pathways in Iba1+ cells. HighlightsO_LIMaternal influenza infection increases fetal exposure to maternally derived tracers. C_LIO_LIFetal blood brain barrier dysfunction is evident in the SVZ and ChP. C_LIO_LIFibrinogen accumulation in the SVZ and ChP correlates with Iba1 intensity. C_LIO_LIIncreased vascular permeability may contribute to altered fetal brain development. C_LI

neuroscience↗