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Updated: Aug 27, 2026

Single Synapse Indicators of Glutamate Release and Uptake in Acute Brain Slices from Normal and Huntington Mice
Published on: March 11, 2020
Decoding neuronal vulnerability: Multidimensional analysis of D1R- and D2R- medium-sized spiny neurons in
Guendalina Bergonzoni1, Miguel Pellegrini1, Aurora Savino2
1Laboratory of NeuroEpigenetics, Department of Cellular, Computational and Integrative Biology (CIBIO), University of Trento, Trento, Italy.
Abstract:
Understanding the molecular mechanisms driving selective neuronal vulnerability to different neurodegenerative disorders remains a crucial, unsolved question. Here, we explored the case of Huntington's disease (HD), where the striatum and, specifically, dopamine receptor 1 (D1R) and dopamine receptor 2 (D2R) medium-sized spiny neurons (MSNs) exhibit differential susceptibility to the HTT CAG-repeat expansion mutation, with D2R-neurons being impacted earlier and more significantly. To unravel differences between D2R and D1R MSNs, we employed a multidimensional approach, integrating genomic, transcriptional, pattern distribution, and somatic instability analyses. Specifically, we used Htt CAG knock-in mouse models harboring 18 (HttQ20: "control") or ~190 (HttQ175: "HD") consecutive CAG repeats, expressing tdTomato and EGFP under the control of Drd1 and Drd2 promoters, respectively. First, comprehensive genomic and transcriptomic analyses following fluorescence-activated cell sorting (FACS) of dissociated striatal neurons revealed distinct gene expression profiles with a significant upregulation of oxidative phosphorylation and translation pathways in D1R-positive neurons already at the pre-symptomatic stage. These transcriptional changes were not accompanied by major copy number variations, as shown by parallel genomic analysis. Secondly, histological analyses revealed a greater proportion of D1R-positive neurons compared to D2R-positive neurons in HD mice, particularly in the ventral-medial neostriatum, with D2R-positive neurons presenting an increased nuclear accumulation of mutant huntingtin aggregates. In summary, our integrative study suggests that the distinct vulnerability of MSNs in HD might result from a combination of an early transcriptional compensatory response of D1R neurons together with specific susceptibility of D2R neurons.
