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Dhellemmes, T.

Publications and source records attributed to Dhellemmes, T..

2 recordsLinked to original sources

Nucleus raphe magnus serotonin neurons bidirectionally control spinal mechanical pain transmission

BackgroundNoxious stimuli are conveyed to and integrated in the dorsal horn of the spinal cord (DHSC) before being transmitted to supraspinal centers, where pain perception is generated. Descending pathways from the brainstem dynamically modulate this integration, either facilitating or inhibiting nociceptive information based on physiological, emotional, genetic and environmental factors. Serotonergic neurons in the nucleus raphe magnus (NRM), activating different spinal 5-HT receptors, exert bidirectional control, both facilitatory and inhibitory, but the underlying mechanisms of this control remain unclear. MethodsWe investigated in adult mice, the NRM serotonergic modulation of nociception using imaging, behavioral, pharmacological, electrophysiological, chemogenetic and optogenetic approaches. ResultsWe have demonstrated that the action of serotonergic neurons in the NRM on spinal nociceptive transmission depends on their activation pattern, which targets different spinal 5-HT receptors likely associated with different spinal microcircuits. Serotonergic neurons of the NRM exert a tonic analgesic effect mediated by 5-HT2c receptor. Low increase in 5-HT activity leads to an increased analgesia through spinal inhibitory interneurons expressing 5-HT2c and 5-HT2A receptors. Finally, prolonged stimulation of serotonergic neurons led to hyperalgesia mediated by 5-HT3 receptor. Comparison of 5-HT receptors in spinal tissue from mice and human shows that 5-HT2c receptor has a very high expression level, comparable between both species. ConclusionsThese results propose a model of bidirectional action of serotonin neurons on nociceptive transmission depending on their level of activity and show that 5-HT2c receptor is the main mediator of serotonin-induced analgesia.

neuroscience↗

A subset of dorsal raphe dopamine neurons is critical for survival-oriented vigilance.

Defensive behaviors are essential for survival, with risk assessment enabling organisms to evaluate and respond to potential threats. The dorsal raphe nucleus (DRN), a key neuromodulatory center, is crucial for encoding motivational salience and regulating arousal and sleep-wake states through its diverse neuronal populations, including dopaminergic neurons (DRNDA). While the roles of DRNDA neurons have been studied, their specific contributions to threat evaluation are less understood. Recent research identifies a distinct subset of DRNDA neurons that express vasoactive intestinal peptide (VIP) and project to the central amygdala (CeA) and the oval nucleus of the bed nucleus of the stria terminalis (ovBNST). Together, these two regions comprise the central extended amygdala, a key network regulating adaptive responses to threats. We hypothesized that distinct DRNDA subpopulations exert diverging effects on sleep-wake regulation and that DRNVIP neurons play a pivotal role in coordinating activity between the CeA and ovBNST, thereby influencing risk assessment and defensive response. To test this hypothesis, we used a combination of in situ hybridization, immunochemistry, whole-brain mapping, electrophysiology, and cell-specific genetic tools in mice and non-human primates. Our findings reveal that DRNVIP neurons form a key DRNDA neuronal subset, uniquely positioned to regulate the central extended amygdala through a feedback loop. These neurons receive inputs from Protein Kinase C delta (PKC-{delta}) neurons in the ovBNST and CeA and send glutamate-releasing projections back to these regions, modulating PKC-{delta} neuron excitability. Selective ablation of DRNVIP neurons increases activity in both the BNST and CeA, disrupting active-phase sleep architecture and impairing risk assessment and defensive behaviors. Together, these findings suggest DRNVIP neurons control specific phases of sleep and orchestrate the central extended amygdalas role in risk assessment and defensive responses. HIGHLIGHTSO_LIDRNVIP neurons form a subset of DRNDA neurons in mice and non-human primates. C_LIO_LIDRNVIP receive inputs from Protein Kinase C delta (PKC-{delta}) neurons in the ovBNST and CeA and project back to both. C_LIO_LIBy releasing glutamate, DRNVIP neurons regulate PKC-{delta} neuron excitability in the ovBNST and CeA. C_LIO_LIAblating DRNVIP neurons increases BNST and CeA activity, disrupts active-phase sleep architecture, and impairs threat responses. C_LI IN BRIEFDRNVIP neurons, a key subset of DRNDA neurons in mice and primates, are strategically positioned to influence the central extended amygdala via feedback loops. They regulate PKC-{delta} neuron excitability in the ovBNST and CeA through glutamate release, with their ablation heightening activity in these regions and altering active-phase sleep architecture, risk assessment and defensive behaviors.

neuroscience↗