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bioRxiv · 10.1101/2022.05.03.490463

Bacterial Infection of the Placenta Induces Sex-Specific Responses in the Fetal Brain

Abstract

BACKGROUNDEpidemiological data indicate that prenatal infection is associated with an increased risk of several neurodevelopmental disorders in the progeny. These disorders display sex differences in presentation. The role of the placenta, which is a target of prenatal infection, in the sex-specificity of neurodevelopmental abnormalities is unknown. We used an imaging-based animal model of the bacterial pathogen Listeria monocytogenes to identify sex-specific effects of placental infection on neurodevelopment of the fetus. METHODSPregnant CD1 mice were infected with a bioluminescent strain of Listeria on embryonic day 14.5 (E14.5). Excised fetuses were imaged on E18.5 to identify the infected placentas. The associated fetal brains were analyzed for gene expression and altered brain structure due to infection. The behavior of adult offspring affected by prenatal Listeria infection was analyzed. RESULTSPlacental infection induced sex-specific alteration of gene expression patterns in the fetal brain and resulted in abnormal cortical development correlated with placental infection levels. Furthermore, male offspring exhibited abnormal social interaction, whereas females exhibited elevated anxiety. CONCLUSIONPlacental infection by Listeria induced sex-specific abnormalities in neurodevelopment of the fetus. Prenatal infection also affected the behavior of the offspring in a sex-specific manner. ImpactO_LIPlacental infection with Listeria monocytogenes induces sexually dichotomous gene expression patterns in the fetal brain. C_LIO_LIAbnormal cortical lamination is correlated with placental infection levels. C_LIO_LIPlacental infection results in autism related behavior in male offspring and heightened anxiety level in female offspring. C_LI

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Lee, K. H., Kiupel, M., Woods, T., Pingle, P., Hardy, J.. 2022-05-03. Bacterial Infection of the Placenta Induces Sex-Specific Responses in the Fetal Brain. https://doi.org/10.1101/2022.05.03.490463

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