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Biology subjects

Dick, R. M.

Publications and source records attributed to Dick, R. M..

2 recordsLinked to original sources

VGF in the Nucleus Accumbens Regulates Synaptic and Opioid-Evoked Plasticity

Neuropeptides contribute to the functional complexity of the nucleus accumbens, and evaluating the mechanisms by which they influence reward neurocircuitry may reveal novel therapeutic targets. In this study, we investigated the role of the neuropeptide precursor VGF (non-acronymic) in the nucleus accumbens, and its contribution to synaptic and opioid-evoked plasticity and behavior. We first characterized VGF expression within the nucleus accumbens, then examined its impact on excitatory synaptic transmission, and finally disrupted its expression to assess its influence on opioid sensitivity. We found that VGF is expressed by interneurons and medium spiny neurons in the nucleus accumbens, and the VGF-derived peptide TLQP-62 reduced excitatory synaptic transmission onto nucleus accumbens medium spiny neurons. Conditional genetic knockout of VGF from the nucleus accumbens did not affect acute opioid sensitivity, but amplified opioid-evoked psychomotor sensitization following chronic fentanyl exposure. These results establish VGF as a modulator of nucleus accumbens synaptic and drug-evoked plasticity. Uncovering the impact of VGF on nucleus accumbens plasticity following exogenous opioid exposure may lead to novel therapeutic targets to treat opioid use disorders. SIGNIFICANCE STATEMENTThe opioid crisis has continued to have a devastating impact, and understanding the basic mechanisms underlying opioid use disorder may facilitate the discovery of new therapeutic targets. Neuropeptide signaling in the nucleus accumbens may be a potential site for intervention given the state-dependent recruitment of neuropeptides in reward circuitry. The neuropeptide precursor VGF has never been studied within the context of drug-evoked plasticity and behavior, despite its role in both adaptive and maladaptive plasticity, and evidence that drug exposure modulates its expression. Our findings show that VGF may be a novel modulator of NAc synaptic and opioid-evoked plasticity, building our understanding of the mechanisms responsible for drug-evoked adaptations and identifying VGF as an interesting potential target for future investigation.

neuroscience↗

Synaptic Dysfunction and Compensation After NMDA Receptor Ablation in the Mouse Medial Prefrontal Cortex

N-methyl-D-aspartate receptors (NMDARs) in the prefrontal cortex (PFC) are critical regulators of neuronal excitability, synaptic plasticity, and cognitive function. NMDAR disruptions, including pharmacological blockade and anti-NMDAR encephalitis, can mimic symptoms of schizophrenia. These observations support the glutamate hypothesis of schizophrenia, which posits that symptoms arise from abnormal corticolimbic glutamatergic signaling. Further evidence for this theory includes abnormal expression of NMDARs and decreased dendritic spine density in the PFC of individuals with schizophrenia, as well as altered spine density and synaptic transmission caused by genetic manipulation of NMDARs. However, it is unknown how progressive loss of NMDAR function in the PFC during adolescence - a developmental time period associated with significant synaptic pruning and symptom onset in schizophrenia - affects excitatory synaptic structure and function. In this study, we used in vivo genome editing to ablate expression of the Grin1 gene, which encodes the obligate GluN1 subunit of NMDARs, in medial PFC neurons of female and male adolescent mice. We assessed synaptic density and function in layer V pyramidal neurons at multiple time points using whole-cell patch-clamp electrophysiology, integrated with confocal imaging of dendritic spine architecture in recorded neurons. NMDAR ablation caused an early decrease in basilar dendritic spine density, followed by a rebound in spine density and corresponding increase in AMPAR-mediated synaptic transmission, suggesting that synaptic compensation maintains an allostatic set point. Our findings demonstrate that NMDAR ablation initially disrupts local PFC networks, followed by recovery via compensatory processes that could be impaired in disease states.

neuroscience↗