Embryonic and adult synaptic proteome perturbations after maternal immune activation: Identification of persistent
Anna Y Yotova1,2, Li-Li Li3, Aet O'Leary1,4
1Goethe University Frankfurt, University Hospital, Department of Psychiatry, Psychosomatic Medicine and Psychotherapy, Frankfurt, Germany.
Insights
Maternal immune activation during pregnancy alters the developing brain
Area of Science:
- Neuroscience
- Psychiatry
- Developmental Biology
Background:
- Maternal infections in pregnancy increase offspring risk for neurodevelopmental psychiatric disorders (NPDs).
- Understanding the molecular mechanisms linking prenatal immune challenges to NPDs is crucial.
Conclusions:
- Prenatal immune activation induces dynamic, long-lasting changes in the hippocampal synaptic proteome.
- These proteomic alterations are linked to neurodevelopmental psychiatric disorder-relevant behaviors and human phenotypes.
- Identifying these molecular targets may inform early interventions for individuals exposed to prenatal immune challenges.
Abstract:
Maternal infections during pregnancy pose an increased risk for neurodevelopmental psychiatric disorders (NPDs) in the offspring. Here, we examined age- and sex-dependent dynamic changes of the hippocampal synaptic proteome after maternal immune activation (MIA) in embryonic and adult mice. Adult male and female MIA offspring exhibited social deficits and sex-specific depression-like behaviours, among others, validating the model. Furthermore, we observed dose-, age-, and sex-dependent synaptic proteome differences. Analysis of the embryonic synaptic proteome implicates sphingolipid and ketoacid metabolism pathway disruptions during neurodevelopment for NPD-pertinent sequelae. In the embryonic hippocampus, prenatal immune activation also led to changes in neuronal guidance, glycosphingolipid metabolism important for signalling and myelination, and post-translational modification of proteins that regulate intercellular interaction and developmental timing. In adulthood, the observed changes in synaptoneurosomes revealed a dynamic shift toward transmembrane trafficking, intracellular signalling cascades, and hormone-mediated metabolism. Importantly, 68 of the proteins with differential abundance in the embryonic brains of MIA offspring were also altered in adulthood, 75% of which retained their directionality. These proteins are involved in synaptic organisation, neurotransmitter receptor regulation, and the vesicle cycle. A cluster of persistently upregulated proteins, including AKT3, PAK1/3, PPP3CA, formed a functional network enriched in the embryonic brain that is involved in cellular responses to environmental stimuli. To infer a link between the overlapping protein alterations and cognitive and psychiatric traits, we probed human phenome-wise association study data for cognitive and psychiatric phenotypes and all, but PORCN were significantly associated with the investigated domains. Our data provide insights into the dynamic effects of an early prenatal immune activation on developing and mature hippocampi and highlights targets for early intervention in individuals exposed to such immune challenges.
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