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Brecier, A.

Publications and source records attributed to Brecier, A..

3 recordsLinked to original sources

Nociceptor clock genes control excitability and pain perception in a sex- and time-dependent manner

Nociception is critical for pain perception and survival and begins with the activation of nociceptors, specialized sensory neurons located in the dorsal root ganglia (DRGs). Both sex and circadian rhythms, governed by clock genes, seem to play a significant role in modulating pain perception. However, the potential interaction between circadian rhythms and sex differences in nociception at the peripheral level has been largely overlooked. Here, we first report that DRGs from mice express clock genes in a time- and sex-dependent manner. Using whole-cell recordings in whole-mounted DRGs and optogenetic stimulation of Nav1.8-expressing neurons, we demonstrate that male nociceptors exhibit reduced excitability during the night, while female nociceptor excitability remains stable across time points. Disruption of the core clock gene Bmal1 in Nav1.8-expressing neurons not only diminished nociceptor activity but also abolished the nighttime reduction in heat sensitivity, highlighting a pivotal role for the molecular clock in regulating nociception. Transcriptomic analyses, voltage-clamp recordings, and pharmacological experiments identified the voltage-gated chloride channel ClC-2, controlled by Bmal1, as a key mediator for the observed fluctuations in male nociceptor excitability. This work opens new avenues for chronobiology-inspired strategies in pain management tailored to sex-specific mechanisms.

neuroscience↗

Layer 1 NDNF interneurons form distinct subpopulations with opposite activation patterns during sleep in freely behaving mice

Non-rapid eye movement (NREM) sleep facilitates memory consolidation by transferring information from the hippocampus to the neocortex. Recent evidence suggests that this transfer occurs primarily when hippocampal sharp-wave ripples (SWRs) and thalamocortical spindles are synchronized. In this study, we asked what role cortical layer 1 NDNF-expressing (L1 NDNF) interneurons play during NREM sleep in gating information transfer during SWR-spindle synchronization. Using simultaneous cell-specific calcium imaging and local field potential recordings in freely moving mice, we discovered that L1 NDNF neurons form cell assemblies tuned to specific sleep stages, exhibiting differential responses to spindle synchronization. L1 NDNF neurons mediate slow inhibition through GABAB receptors. Systemic application of a GABAB receptor antagonist increased pyramidal neuron excitability during NREM sleep, enhanced inhibitory responses during SWRs, and disrupted SWR-spindle coupling. Overall, these findings suggest an important contribution of L1 NDNF neuron-mediated slow inhibition to the synchronization of sleep oscillations with potential implications for memory consolidation processes.

neuroscience↗

Vigilance and behavioral state-dependent modulation of cortical neuronal activity throughout the sleep/wake cycle

GABAergic inhibitory neurons, through their molecular, anatomic and physiological diversity, provide a substrate for the modulation of ongoing cortical circuit activity throughout the sleep-wake cycle. Here, we investigated neuronal activity dynamics of parvalbumin (PV), vasoactive intestinal polypeptide (VIP) and somatostatin (SST) neurons in naturally-sleeping head-restrained mice at the level of layer 2/3 of the primary somatosensory barrel cortex of mice. Through calcium-imaging and targeted single-unit loose-patch or whole-cell recordings, we found that PV action potential (AP) firing activity was largest during both NREM (non-rapid eye movement) and REM sleep stages, that VIP neurons were activated during REM sleep and that the overall activity of SST neurons remained stable throughout the sleep/wake cycle. Analysis of neuronal activity dynamics uncovered rapid decreases in PV cell firing at wake onset followed by a progressive recovery during wake. Simultaneous local field potential (LFP) recordings further revealed that, except for SST neurons, a large proportion of neurons were modulated by ongoing delta and theta waves. During NREM sleep spindles, PV and SST activity increased and decreased, respectively. Finally, we uncovered the presence of whisking behavior in mice during REM sleep and show that the activity of VIP and SST is differentially modulated during awake and sleeping whisking bouts, which may provide a neuronal substrate for internal brain representations occurring during sleep.

neuroscience↗