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Marshall, L. L.

Publications and source records attributed to Marshall, L. L..

2 recordsLinked to original sources

Cumulative pregnancy and postnatal environmental exposures impact social behaviour in male mice associated with epigenetic, ribosomal, and immune dysregulation

Environmental exposures across critical developmental windows can significantly influence brain development and contribute to the pathogenesis of neurodevelopmental disorders (NDDs). Emerging clinical evidence suggests that cumulative environmental factors during early development result in more pronounced disease phenotypes in offspring. Here, we developed a triple-hit model using C57Bl/6JAusb mice to examine the cumulative effects of antenatal social stress, antenatal chronic high-fat diet consumption, and postnatal poly(I:C) exposure on neurodevelopmental outcomes in offspring. Male triple-hit offspring displayed autism-like social deficits and an overall increased susceptibility to neurodevelopmental behavioural alterations in adulthood compared to male non-stressed controls. Conversely, these behavioural changes were not observed amongst female triple-hit offspring. Single-cell RNA (scRNA) transcriptomic and bulk proteomic sequencing were performed in male triple-hit offspring across peripheral blood immune cells and brain tissue. scRNA sequencing in microglia, astrocytes, and oligodendrocytes revealed dysregulation in critical glial cell processes, ribosomal functions, and chromatin remodelling. Similar functional themes were observed across peripheral blood macrophages, neutrophils, and naive B cells - displaying immune and ribosomal dysregulation at the transcriptional level. Proteomics pathway enrichment analyses revealed significantly reduced protein abundance in ribosomal biogenesis, translation, and chromatin remodelling functions in both peripheral blood immune cells and brain tissue. We also observed synaptic dysfunction in the blood and brain proteome. Overall, using our unique triple-hit model, we demonstrate that multiple early life environmental exposures drive NDD-associated behaviours in a sex-specific manner; and is associated with overlapping central and peripheral molecular mechanisms that have clinical relevance to NDD pathogenesis.

developmental biology↗

Tet2 loss suppress α-synuclein pathology by stimulating ciliogenesis

There are no approved treatments that slow Parkinsons disease (PD) progression and therefore it is important to identify novel pathogenic mechanisms that can be targeted. Loss of the epigenetic marker, Tet2 appears to have some beneficial effects in PD models, but the underlying mechanism of action is not well understood. We performed an unbiased transcriptomic analysis of cortical neurons isolated from patients with PD to identify dysregulated pathways and determine their potential contributions to the disease process. We discovered that genes associated with primary cilia, non-synaptic sensory and signaling organelles, are upregulated in both early and late PD patients. Enhancing ciliogenesis in primary cortical neurons via sonic hedgehog signaling suppressed the accumulation of -synuclein pathology in vitro. Interestingly, deletion of Tet2 in mice also enhanced the expression of primary cilia and sonic hedgehog signaling genes and rescued the accumulation of -synuclein pathology and dopamine neuron degeneration in vivo. Our findings demonstrate the crucial role of Tet2 loss in regulating ciliogenesis and potentially affecting the progression of PD pathology.

neuroscience↗