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Bergum, N.

Publications and source records attributed to Bergum, N..

2 recordsLinked to original sources

The impact of alpha synuclein overexpression on nigrostriatal transmission

Accumulation of wild type synuclein in dopamine neurons of the Substantia Nigra pars compacta is a pathological hallmark of Parkinson's disease (PD), which commonly precedes neurodegeneration. Yet how synuclein accumulation affects nigrostriatal neurotransmission early in the progression of PD remains poorly understood. In addition to axonal dopamine release, SNc neurons also co-release GABA and glutamate from striatal axon terminals and release dopamine from their somatodendritic region. However, the selective vulnerability of these distinct functions to increased synuclein remains largely unexplored. Here, we selectively overexpressed wild type human synuclein in SNc dopamine neurons to examine impacts on nigrostriatal and somatodendritic transmission and correlated these changes to impairments in locomotion. We found that dopamine release in the dorsolateral striatum was robustly reduced, while transmission to postsynaptic medium spiny neurons remained intact. Glutamate co-release from dopamine terminals onto both medium spiny neurons and cholinergic interneurons was selectively impaired, while GABA co-release was unaffected. Conversely, somatodendritic dopamine release within the SNc was completely abolished by synuclein overexpression. Together, these findings identify selective deficits in nigrostriatal neurotransmission associated with wild type synuclein accumulation prior to overt degeneration and raise the possibility of compensatory adaptations shaping the early functional consequences of synuclein pathology in PD.

neuroscience↗

Dopamine enhances GABAA receptor-mediated current amplitude in a subset of intrinsically photosensitive retinal ganglion cells

Neuromodulation in the retina is crucial for effective processing of retinal signal at different levels of illuminance. Intrinsically photosensitive retinal ganglion cells (ipRGCs), the neurons that drive non-image forming visual functions, express a variety of neuromodulatory receptors that tune intrinsic excitability as well as synaptic inputs. Past research has examined actions of neuromodulators on light responsiveness of ipRGCs, but less is known about how neuromodulation affects synaptic currents in ipRGCs. To better understand how neuromodulators affect synaptic processing in ipRGC, we examine actions of opioid and dopamine agonists have on inhibitory synaptic currents in ipRGCs. Although {micro}-opioid receptor (MOR) activation had no effect on {gamma}-aminobutyric acid (GABA) currents, dopamine (via the D1R) amplified GABAergic currents in a subset of ipRGCs. Furthermore, this D1R-mediated facilitation of the GABA conductance in ipRGCs was mediated by a cAMP/PKA-dependent mechanism. Taken together, these findings reinforce the idea that dopamines modulatory role in retinal adaptation affects both non-image forming as well as image forming visual functions.

neuroscience↗