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Vigneault, E.

Publications and source records attributed to Vigneault, E..

2 recordsLinked to original sources

Unexpected inhibition of motor function by dopamine activation of D1/D2 co-expressing striatal neurons.

The central function of the striatum and its dopaminergic (DA) afferents in motor control and the integration of cognitive and emotional processes is commonly explained by the two striatal efferent pathways characterized by striatal projection neurons (SPNs) expressing DA D1 receptors and D2 receptors (D1-SPNs and D2-SPNs), without regard to SPNs coexpressing both receptors (D1/D2-SPNs). We developed an approach that enables the targeting of these hybrid SPNs and demonstrated that although these SPNs are less abundant, they play a major role in guiding the motor function of the other two main populations. D1/D2-SPNs project exclusively to the external globus pallidus (GPe) and have specific electrophysiological features with distinctive integration of DA signals. Optogenetic stimulation and loss-of-function experiments indicated that D1/D2-SPNs potentiate the prokinetic and antikinetic functions of D1-SPNs and D2-SPNs, respectively, and restrain the integrated motor response to psychostimulants. Overall, our findings demonstrate the essential role of this third unacknowledged population of D1/D2 coexpressing neurons, which orchestrates the fine-tuning of DA regulation in the thalamo-cortico-striatal loops. One-Sentence SummaryD1/D2 SPNs modulate the motor function of both D1- and D2-SPNs

neuroscience↗

Disruption of the grid cell network in a mouse model of early Alzheimer's disease

Early-onset familial Alzheimers disease (AD) is marked by an aggressive buildup of amyloid beta (A{beta}) proteins, yet the neural circuit operations impacted during the initial stages of A{beta} pathogenesis remain elusive. Here, we report a coding impairment of the medial entorhinal cortex (MEC) grid cell network in a transgenic mouse model of familial AD that over-expresses A{beta} throughout the hippocampus and entorhinal cortex. Grid cells showed reduced spatial periodicity, spatial stability, and synchrony with interneurons and head-direction cells. In contrast, the spatial coding of non-grid cells within the MEC, and place cells within the hippocampus, remained intact. Grid cell deficits emerged at the earliest incidence of A{beta} fibril deposition and coincided with impaired spatial memory performance in a path integration task. These results demonstrate that widespread A{beta}-mediated damage to the entorhinal-hippocampal circuit results in an early impairment of the entorhinal grid cell network.

neuroscience↗