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Updated: Jun 28, 2026

Dopamine Release at Individual Presynaptic Terminals Visualized with FFNs
Published on: August 31, 2009
The Synaptic Vesicle Priming Protein Munc13 Mediates Evoked Somatodendritic Dopamine Release
Joseph J Lebowitz1, Aditi Banerjee2, Gillian Handy2
1Vollum Institute, Oregon Health and Science University, Portland, Oregon, 97239.
None:
Midbrain dopamine neurons release dopamine not only from their axons but also from their somata and dendrites. Shared and distinct properties have been proposed for somatodendritic and axonal release, but the mechanisms of somatodendritic release remain unclear. We here used gene knock-out, electrophysiology, and imaging to define roles of the synaptic vesicle priming protein Munc13 in somatodendritic dopamine release in comparison with axonal secretion. We characterized mice of either sex and found that Munc13 ablation decreased evoked but not spontaneous somatodendritic dopamine transmission measured as D2 receptor-mediated currents. Imaging with a fluorescent sensor confirmed the importance of Munc13 in evoked somatodendritic and axonal dopamine secretion. Pharmacological experiments revealed a modest contribution of release from norepinephrine axons to D2 receptor-mediated currents, and the relative contribution was enhanced after Munc13 knock-out. Altogether, these data establish important roles of Munc13 in evoked somatodendritic release. These roles are similar to Munc13 functions in axonal dopamine release and at fast synapses. Spontaneous midbrain dopamine release was not impaired by Munc13 ablation from dopamine neurons and may rely on a release pathway that is independent of the prototypical release machinery employed at synapses.
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