Search bioRxiv⌕ Search

Biology subjects

Pugh, J. R.

Publications and source records attributed to Pugh, J. R..

2 recordsLinked to original sources

Loss of dystrophin reduces CB1 receptor expression and endocannabinoid-dependent synaptic plasticity in the cerebellar cortex

Duchenne Muscular Dystrophy (DMD) is a debilitating degenerative condition with complex musculoskeletal and cognitive symptoms. The protein responsible, dystrophin, is expressed in both muscle tissue and within the central nervous system (CNS) where it localizes to inhibitory synapses. Recent work has shown that dystrophin loss in skeletal muscle leads to abnormalities in endocannabinoid signaling, particularly related to Cannabinoid Receptor Type 1 (CB1R) signaling pathways. CB1Rs are highly expressed throughout the CNS, and have been implicated in short- and long-term plasticity mechanisms. Despite this curious overlap, no work examines how dystrophin loss impacts CB1R signaling in the CNS, a mechanism that may contribute to the diverse neurological pathologies seen in DMD patients. To address this, we used a combination of immunofluorescent labeling and ex vivo electrophysiology to examine CB1R signaling at three classes of synapses within the cerebellum. Utilizing DMDmdx mice, a mouse model of DMD, we find that loss of dystrophin significantly impairs CB1R signaling specifically at parallel fiber-Purkinje Cell synapses, a key location for cerebellar learning. We also find that endocannabinoid-mediated long-term depression at these synapses is absent. Loss of endocannabinoid signaling and synaptic plasticity may contribute to cerebellar dysfunction and motor control symptoms in DMD. These data suggest that dystrophin loss may have previously undescribed consequences for CNS function, and that modulation of endocannabinoid signaling may be a therapeutic strategy for symptom management. Significance StatementDuchenne Muscular Dystrophy (DMD) is a degenerative condition with severe CNS deficits in addition to the well-known muscle weakening. However, no effective treatments currently exist for CNS-related aspects of this disease. Given that endocannabinoid signaling is altered in dystrophic muscle and the importance of endocannabinoid signaling in CNS function, we examined endocannabinoid signaling in the cerebellum of DMDmdx mice, a model of DMD. Utilizing immunolabeling and ex vivo electrophysiology, we find a significant decrease in CB1R expression and functionality specifically at parallel fiber synapses, resulting in reduced or abolished short- and long-term synaptic plasticity. These findings demonstrate that changes in endocannabinoid function contribute to CNS deficits in DMD and open the door to new potential therapeutic targets for treatment.

neuroscience↗

Tonic GABAA receptor currents in Cerebellar Purkinje cells of wild-type and DMDmdx mice

Cerebellar Purkinje cells (PCs) fire spontaneously in the absence of excitatory input and depend heavily on inhibition to modify their firing activity. Previous work in the field has described phasic inhibition arising primarily from molecular layer interneuron-PC (MLI-PC) synapses extensively, however little work explores other sources of inhibition in PCs. Several types of neurons throughout the brain and within the cerebellum receive significant inhibition through tonic currents, a low amplitude current resulting from ambient GABA acting upon extrasynaptic GABAA receptors. Through the use of ex vivo electrophysiology and single cell RNA analysis, we investigated the role of tonic inhibition in PCs. We find that PCs have a significant tonic current mediated by {delta}-subunit containing GABAA receptors, which accounts for roughly half of the total inhibitory current. We also examined PC tonic GABA currents in DMDmdx mice, a mouse model of Duchenne Muscular Dystrophy with [~]50% reduction in phasic inhibitory currents. We find that tonic inhibition is dramatically upregulated in DMDmdx PCs, suggesting a possible compensatory mechanism to account for the loss in phasic inhibition. Furthermore, roughly 80% of the total inhibition is derived from tonic currents in this condition. These data suggest that under physiological conditions, PCs are subject to both tonic and phasic inhibition, and that adjustments in the balance of inhibition may be a physiological mechanism for PC function. These data reveal an expanded range of inhibitory currents in PC which may be critical to regulating PC activity in both normal and pathophysiological states.

neuroscience↗