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Warlow, S. M.

Publications and source records attributed to Warlow, S. M..

2 recordsLinked to original sources

GABA-glutamate corelease is a mechanism for state-dependent neurotransmission

Ventral tegmental area neurons projecting to lateral habenula (LHb) corelease the main inhibitory and excitatory transmitters, GABA and glutamate (VTAGG). Yet the functional role of this synchronous signal remains unclear. We hypothesized that the sign of VTAGG action depends on postsynaptic state in LHb. Ex vivo, activating VTAGG terminals evoked excitatory and inhibitory responses in LHb that varied with postsynaptic membrane potential. In vivo, VTAGG inputs drove net inhibition and supported positive reinforcement that was dependent on GABA, but not glutamate, release. Using chemogenetics to bidirectionally modulate LHb, we found that LHb hyperpolarization shifted VTAGG effects toward excitation, abolishing positive reinforcement, whereas LHb depolarization enhanced net inhibition and positive reinforcement. Thus, the activity state of LHb neurons dictates whether GABA-glutamate corelease is functionally inhibitory or excitatory and can reverse the motivational valence of VTAGG input, supporting a homeostatic role for GABA-glutamate cotransmission with broad implications for disorders of imbalanced motivation.

neuroscience↗

Mesoaccumbal glutamate neurons drive reward via glutamate release, but aversion via dopamine co-release

Ventral tegmental area (VTA) projections to the nucleus accumbens medial shell (NAc) drive reward-related motivation. Although dopamine neurons are predominant, a substantial glutamatergic projection is also present, and a subset of these populations can release both dopamine and glutamate. Optogenetic stimulation of VTA glutamate neurons supports self-stimulation, but can also induce place avoidance, even in the same assay. Here, we parsed the selective contribution of glutamate or dopamine co-release from VTA glutamate neurons to reinforcement and avoidance. We expressed Channelrhodopsin (ChR2) in VTA glutamate neurons, in combination with CRISPR/Cas9 to disrupt either the gene encoding vesicular glutamate transporter 2 (VGLUT2) or Tyrosine hydroxylase (Th). Selective disruption of VGLUT2 abolished optogenetic self-stimulation, but left real-time place avoidance intact, while CRISPR/Cas9 deletion of Th preserved optogenetic self-stimulation but abolished place avoidance. Our results demonstrate that glutamate release from VTA glutamate neurons is positively reinforcing, but that dopamine release from these same neurons can induce avoidance behavior.

neuroscience↗