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Barcomb, K.

Publications and source records attributed to Barcomb, K..

2 recordsLinked to original sources

Overexpression of alpha synuclein in Midbrain Dopamine Neurons Reduces Dopamine Release Without Cell Loss and Drives Mild Motor Deficits in Mice

It has proven challenging to faithfully recapitulate the key pathological, physiological, and behavioral features of Parkinsons Disease (PD) in animals. Here we used adeno-associated virus (AAV) vectors to achieve cell type-specific overexpression of wild-type human -synuclein (syn) and a fluorophore (mCherry) in midbrain dopamine neurons to model PD in mice. We found that AAVs drove selective expression of both syn and mCherry in midbrain dopamine neurons. In conjunction with approximately 2-fold overexpression of syn, we found several histopathological markers of PD-like pathology, including progressive accumulation of phosphorylated and aggregated syn, ubiquitin, and a reduction in the expression of tyrosine hydroxylase, without overt cell loss. In parallel, syn overexpression drove a profound loss of evoked dopamine release, without a substantive change in the intrinsic properties of dopamine neurons, nor in striatal dopamine content. Finally, syn overexpression led to mild locomotor deficits. Together, these findings suggest that moderate syn overexpression can mimic some aspects of premotor and early symptomatic phases of PD, including markers of Lewy Body-like pathology and functional loss of evoked dopamine release. This model may be useful for investigating cellular and circuit mechanisms related to PD pathogenesis and progression.

neuroscience↗

A diverse network of pericoerulear neurons control arousal states

As the primary source of norepinephrine (NE) in the brain, the locus coeruleus (LC) regulates arousal, avoidance and stress responses1,2. However, how local neuromodulatory inputs control LC function remains unresolved. Here we identify a population of transcriptionally, spatially and functionally diverse GABAergic neurons in the LC dendritic field that receive distant inputs and modulate modes of LC firing to control global arousal levels and arousal-related processing and behaviors. We define peri-LC anatomy using viral tracing and combine single-cell RNA sequencing with spatial transcriptomics to molecularly define both LC-NE and peri-LC cell types. We identify several neuronal cell types which underlie peri-LC functional diversity using a series of complementary neural circuit approaches in behaving mice. Our findings indicate that LC and peri-LC neurons are transcriptionally, functionally, and anatomically heterogenous neuronal populations which modulate arousal and avoidance states. Defining the molecular, cellular, and functional diversity of the LC and peri-LC provides a road map for understanding the neurobiological basis of arousal, motivation and neuropsychiatric disorders.

neuroscience↗