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Mirault, D.

Publications and source records attributed to Mirault, D..

2 recordsLinked to original sources

GPC5 expression highlights astrocytic heterogeneity and divergent hippocampal responses in Alzheimer's and Parkinson's Dementia

Regional heterogeneity of astrocytes and neurons is increasingly recognised as a determinant of selective vulnerability in neurodegeneration, yet the molecular signatures underlying this specificity remain poorly defined. Glypican-5 (GPC5), a heparan sulfate proteoglycan expressed mainly by astrocytes, contributes to synaptic organisation and circuit stability, whose disruption may undermine astrocyte-neuron crosstalk and contribute to selective neuronal loss in neurodegenerative diseases. Using multiplex chromogenic immunohistochemistry, in situ hybridization and digital pathology, we mapped GPC5 expression across the hippocampus and parahippocampal cortex in post-mortem tissue from non-demented control (CTL), Alzheimers disease (AD) and Parkinsons disease with dementia (PDD) cases. In CTL brains, GPC5 labelled spatially restricted populations of astrocytes and pyramidal neurons organized according to hippocampal subfield and laminar architecture. GPC5-positive astrocytes co-expressed canonical markers but represented a more restricted population while GPC5 protein was enriched at synapse-rich regions of the outer molecular layer of the dentate gyrus. In AD and PDD, regional distribution patterns of GPC5 were distinct from canonical astrocyte markers including GFAP, AQP4 and ALDH1L1. In PDD, GPC5 distribution was largely preserved. In AD, GPC5 underwent selective redistribution with a significant loss of the staining in the dentate gyrus, and an accumulation on amyloid plaques, putatively secreted by plaque-associated astrocytes, and on neurofibrillary tangles, likely of neuronal and astrocytic origin These findings reveal disease- and region-specific remodelling of a spatially organised astrocyte-neuron system and establish GPC5 as a molecularly distinct responder to AD pathology.

neuroscience↗

The Douglas Bell Canada Brain Bank Post-mortem Brain Imaging Protocol

Magnetic resonance imaging (MRI) is a valuable non-invasive tool that has been widely used for in vivo investigations of brain morphometry and microstructural characteristics. Postmortem MRIs can provide complementary anatomical and microstructural information to in vivo imaging and ex vivo neuropathological assessments without compromising the sample for future investigations. We have developed a postmortem MRI protocol for the brain specimens of the Douglas-Bell Canada Brain Bank (DBCBB), the largest brain bank in Canada housing over 3000 neurotypical and diseased brain specimens, that allows for acquisition of high-resolution 3T and 7T MRIs. Our protocol can be used to scan DBCBB specimens with minimal tissue manipulation, allowing for feasibly scanning large numbers of postmortem specimens while retaining the quality of the tissue for downstream histology and immunohistochemistry assessments. We demonstrate the robustness of this protocol in spite of the dependency of image quality on fixation by acquiring data on the first day of extraction and fixation, to over twenty years post fixation. The acquired images can be used to perform volumetric segmentations, cortical thickness measurements, and quantitative analyses which can be potentially used to link MRI-derived and ex vivo histological measures, assaying both the normative organization of the brain and ex vivo measures of pathology.

neuroscience↗