bioRxiv Science⌕ Search

Biology subjects

Yee, J. X.

Publications and source records attributed to Yee, J. X..

2 recordsLinked to original sources

A circuit mechanism for the coordinated actions of opposing neuropeptide and neurotransmitter signals

Fast-acting neurotransmitters and slow, modulatory neuropeptides are commonly co-released from neurons in the central nervous system (CNS), albeit from distinct synaptic vesicles1. The mechanisms of how co-released neurotransmitters and neuropeptides that have opposing actions, e.g., stimulatory versus inhibitory, work together to exert control of neural circuit output remain unclear. This question has been difficult to resolve due to the inability to selectively isolate these signaling pathways in a cell- and circuit-specific manner. To overcome these barriers, we developed a genetic-based anatomical disconnect procedure that utilizes distinct DNA recombinases to independently facilitate conditional in vivo CRISPR/Cas9 mutagenesis2 of neurotransmitter- and neuropeptide-related genes in distinct cell types in two different brain regions simultaneously. With this approach we demonstrate that the stimulatory neuropeptide neurotensin (Nts) and the inhibitory neurotransmitter{gamma} -aminobutyric acid (GABA), which are co-released from neurons in the lateral hypothalamus (LH), work coordinately to activate dopamine neurons of the ventral tegmental area (VTA-DA). We show that GABA release from LH-Nts neurons acts on GABA neurons within the VTA to rapidly disinhibit VTA-DA neurons, while Nts signals through the Nts receptor 1 (Ntsr1) on VTA-DA neurons to promote a slow depolarization of these cells. Thus, these two signals act on distinct time scales through different cell types to enhance mesolimbic dopamine neuron activation, which optimizes behavioral reinforcement. These data demonstrate a circuit-based mechanism for the coordinated action of a neurotransmitter and neuropeptide with opposing effects on cell physiology.

neuroscience↗

Intrinsic regulators of the action potential waveform control dopamine release to shape behavior

Despite the widely known role of dopamine in reinforcement learning, how the patterns of dopamine release that are critical to the acquisition, performance, and extinction of conditioned responses are generated is poorly resolved. Here, we demonstrate that the coordinated actions of two ion channels, Kv4.3 and BKCa1.1, control the pattern of dopamine neuron firing and dopamine release on different time scales to regulate separate phases of reinforced behavior in mice. Inactivation of Kv4.3 in VTA dopamine neurons increases ex vivo pacemaker activity and excitability that is associated with increased in vivo ramping dynamics prior to lever press in a learned instrumental response paradigm. Loss of Kv4.3 enhances performance of the learned response and facilitates extinction. In contrast, loss of BKCa1.1 increases burst firing and phasic dopamine release that enhances learning of an instrumental response. Inactivation of BKCa1.1 enhances extinction burst lever pressing in early extinction training that is associated with increased reward prediction error signals. These data demonstrate that temporally distinct patterns of dopamine release are governed by the intrinsic regulators of the cell to shape behavior. TeaserWe show that ion channels in midbrain dopamine neurons are critical for patterning action potential firing at the cell body and governing neurotransmitter release to regulate reinforcement learning.

neuroscience↗