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Dafalias, T.

Publications and source records attributed to Dafalias, T..

2 recordsLinked to original sources

In vivo imaging in transgenic songbirds reveals superdiffusive neuron migration in the adult brain

Neuron migration is a key phase of neurogenesis, critical for the assembly and function of neuronal circuits. In songbirds, this process continues throughout life, but how these newborn neurons disperse through the adult brain is unclear. We addressed this question using in vivo two-photon imaging in transgenic songbirds that express GFP in young neurons. In juvenile and adult birds, migratory cells were present at a high density, traveled in all directions, and made frequent course changes. Notably, these dynamic migration patterns were well fit by a superdiffusive model. Simulations revealed that these diffusion-like dynamics were sufficient to disperse new neurons throughout the song nucleus HVC. These results suggest that diffusion-like migration may underlie the formation and maintenance of nuclear brain structures in the postnatal brain and indicate that transgenic songbirds are a useful resource for future studies into the mechanisms of adult neurogenesis. HighlightsO_LITransgenic songbirds express GFP in a neurogenic lineage C_LIO_LIGFP expression is strong and sparse enough to track single cells in vivo C_LIO_LIAdult neuron migration is well fit by a superdiffusive model C_LIO_LISuperdiffusive migration is sufficient to populate HVC in simulation C_LI

neuroscience↗

Physiological constraints on the rapid dopaminergic modulation of striatal reward activity

While the contribution of dopaminergic (DA) neurons to associative learning is firmly established, their importance for influencing imminent behavior on short (subsecond) timescales is less clear. Mechanistically, it is thought that DA neurons drive these behavioral changes because of their ability to rapidly alter striatal spiking activity. However, due to limitations of previous approaches, the straightforward prediction that striatal spiking is rapidly influenced by physiologically relevant DA signals has not been rigorously tested. Here, we monitored changes in spiking responses in the ventral striatum while transiently reducing or increasing DA levels. Contrary to the predicted effect, neither spontaneous nor reward-evoked striatal spiking activity was strongly influenced by optogenetic manipulations, except when DA exceeded reward-matched levels. These findings challenge the view that DA plays a major role in rapidly influencing striatal activity. Finally, they suggest a need to distinguish between the modulatory functions of DA under physiological and supra-physiological conditions.

neuroscience↗