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Cheer, J.

Publications and source records attributed to Cheer, J..

2 recordsLinked to original sources

Dynamic Accumbal Overrepresentation of Reward Cues in Food- and Opioid-Seeking Rats after Prenatal THC Exposure

The increasing prevalence of cannabis use during pregnancy has raised significant medical concerns, primarily related to the presence of {Delta}9-tetrahydrocannabinol (THC), which readily crosses the placenta and impacts fetal brain development. Previous research has identified midbrain dopaminergic neuronal alterations related to maternal THC consumption. However, the enduring consequences that prenatal cannabis exposure (PCE) has on striatum-based processing during voluntary reward pursuit have not been specifically determined. Here, we characterize PCE rats during food (palatable pellets) or opioid (remifentanyl)-maintained reward seeking. We find that the supra motivational phenotype of PCE rats is independent of value-based processing and is instead related to augmented reinforcing efficiency of opioid rewards. Our findings reveal that in utero THC exposure leads to increased cue-evoked dopamine release responses and an overrepresentation of cue-aligned, effort-driven striatal patterns of encoding. Recapitulating findings in humans, drug-related neurobiological adaptations of PCE were more pronounced in males, who similarly showed increased vulnerability for relapse. Collectively, these findings indicate that prenatal THC exposure in male rats engenders a pronounced neurodevelopmental susceptibility to addiction-like disorders later in life.

neuroscience↗

Distinct endocannabinoids specifically signal to astrocytes and neurons

The endocannabinoid system is an essential intercellular signaling mechanism with a decisive role in many physiological functions of the brain. Endocannabinoids (eCBs), directly acting on presynaptic neuronal CB1 receptors (CB1Rs), can inhibit neurotransmitter release. In addition, they can potentiate adjacent synapses, inducing lateral regulation of synaptic transmission through astrocyte CB1Rs. In contrast to most, if not all, neurotransmitter systems, the eCB system involves two distinct ligands, Anandamide and 2-Arachidonoylglycerol (AEA and 2AG), and a single receptor (CB1R). The physiological meaning of this particularity remains unknown. Here we show that different eCBs are signaling both astrocytes and neurons, inducing distinct and contrasting synaptic regulation. Combining two-photon with a pharmacological and optogenetic approaches and transgenic mice for the synthesis enzyme of both eCBs, we have found that the absence of 2-AG synthesis abolished the inhibitory effect, which was mediated exclusively by neuronal mechanisms. However, the absence of AEA synthesis prevents the lateral potentiation mediated by astrocyte calcium mobilization. Together this indicates that 2-AG signals to neurons, decreasing neurotransmitter release, while AEA signals to astrocytes and induces lateral potentiation. Additionally, AEA synthesis is required for the synaptic potentiation induced by spike-timing-dependent plasticity, as well as astrocyte CB1R, indicating that distinct eCBs-signaling influences neuronal plasticity. We conclude that 2-AG and AEA induce distinct and contrasting synaptic regulation through CB1R in different cell types.

neuroscience↗