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Villegas-Salmeron, J.

Publications and source records attributed to Villegas-Salmeron, J..

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Spatiotemporal transcriptomics reveals distinct responses of ALDH1A1-positive and ALDH1A1-negative midbrain dopaminergic neurons to alpha-synuclein overexpression

Parkinsons disease is characterized by the progressive and preferential degeneration of dopaminergic neurons in the substantia nigra pars compacta, and intraneuronal alpha-synuclein (Syn) accumulation. Dopaminergic neurons (DANs) are anatomically and molecularly heterogeneous, but the impact of Syn pathology on distinct subpopulations is not well defined. One midbrain DAN sub-population expresses Aldehyde Dehydrogenase 1A1 (ALDH1A1), an enzyme that detoxifies aldehyde by-products of dopamine metabolism, and has been associated with differential vulnerability. Here, we applied GeoMx spatial transcriptomics to profile ALDH1A1-positive (ALDH1A1+) and ALDH1A1-negative (ALDH1A1-) DAN subpopulations in the mouse midbrain in situ at 3- and 8-weeks following adeno-associated virus (AAV)-mediated Syn overexpression. Analyzing 10,532 genes, we identified robust transcriptional differences between ALDH1A1+ and ALDH1A1- DANs under control conditions, supporting their characterization as distinct molecular subpopulations. In AAV-Syn-injected mice, we observed increased Snca expression and a reduction in ALDH1A1- DANs in the ipsilateral substantia nigra. Syn overexpression induced subpopulation-specific and time-dependent transcriptional responses, with dysregulation in ALDH1A1- DANs characterized by early down-regulation of pathways related to synaptic function, neurotransmitter handling, and bioenergetics, including glycolysis. In contrast, ALDH1A1+ DANs displayed later up-regulation of genes enriched for Acetyl-CoA and cholesterol metabolism pathways, reflecting subpopulation-specific adaptations to Syn overexpression. Analysis of human single nucleus RNA-sequencing data revealed partial conservation of the metabolic dysregulation signature. Together, our findings show that murine midbrain ALDH1A1+ and ALDH1A1- DANs represent molecularly distinct subpopulations with divergent temporal responses to Syn overexpression, emphasizing the importance of cell-type and disease-stage context in studies of Parkinsons disease mechanisms.

neuroscience↗

Shared and distinct microRNA profiles between HT22, N2A and SH-SY5Y cell lines and primary mouse hippocampal neurons

MicroRNAs (miRNA) are small non-coding RNAs that are key negative regulators of gene expression. Their roles include shaping the gene expression landscape during and after brain development by defining and maintaining levels of proteins that generate the distinct morphological and functional properties of neurons and other brain cell types. HT22, N2A, and SH-SY5Y are common immortalized neuronal cell lines that offer simple, less expensive, and time-saving options for in vitro modelling to evaluate miRNA functions. The extent to which these lines reflect primary neurons remains, however, unclear. Here, we benchmarked the miRNA profiles of cultured mouse hippocampal neurons against Argonaute-loaded miRNAs in the adult mouse hippocampus and miRNA data from the hippocampus of patients with drug-resistant temporal lobe epilepsy. We then compared the miRNA expression landscape in HT22, N2A and SH-SY5Y against mouse hippocampal primary cell cultures. We profiled over 700 miRNAs across the lines and detected 310 miRNAs in all four cell types. This included detection of neuron-enriched miRNAs such as miR-124 and miR-128, although the cell lines typically displayed lower levels of these than in primary neurons and reference adult hippocampal tissue. The miRNA profile in the HT22 cell line showed the highest correlation to the mouse primary neuronal cultures. Together, this study provides a dataset on basal miRNA expression across commonly used cell lines for neuroscience research and evidence for both conserved and distinct profiles that should be used to inform decisions on cell lines for modelling brain and miRNA research.

neuroscience↗