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Chemin, J.

Publications and source records attributed to Chemin, J..

3 recordsLinked to original sources

Facilitation of Cav3.2 channel gating in pain pathways reveals a novel mechanism of serum-induced hyperalgesia

The CaV3.2 isoform of T-type voltage-gated calcium channels plays a crucial role in regulating the excitability of nociceptive neurons; the endogenous molecules that modulate its activity, however, remain poorly understood. Here, we used serum proteomics and patch-clamp physiology to discover a novel peptide albumin (1-26) that facilitates channel gating by chelating trace metals that tonically inhibit CaV3.2 via H191 residue. Importantly, serum also potently modulated T-currents in human and rodent dorsal root ganglion (DRG) neurons. In vivo pain studies revealed that injections of serum and albumin (1-26) peptide resulted in robust mechanical and heat hypersensitivity. This hypersensitivity was abolished with a T-channel inhibitor, in CaV3.2 null mice and in CaV3.2 H191Q knock-in mice. The discovery of endogenous chelators of trace metals in the serum deepens our understanding of the role of CaV3.2 channels in neuronal hyperexcitability and may facilitate the design of novel analgesics with unique mechanisms of action.

neuroscience↗

T-type calcium channels participate in intrinsic and synaptic activity of PKCγ neurons of the dorsal horn of the spinal cord during chronic pain

ABSTRACTThe disinhibition of the excitatory PKC{gamma} interneurons plays a central role during mechanical allodynia in the dorsal horn of the spinal cord, routing harmless information to nociceptive pathways. The T-type calcium channel Cav3.2, necessary for mechanical and cold allodynia, is found in most PKC{gamma} neurons of the spinal cord. In this study, the role of Cav3.2 in PKC{gamma} neurons was studied after its pharmacological inhibition and its conditional deletion (KO) in Cav3.2GFP-Flox KI x PKC{gamma}-CreERT2 x Ai14 mice in normal conditions and in the spared-nerve-injury (SNI) model of neuropathic pain. Conditional deletion of Cav3.2 increased the hind-paw basal mechanical sensitivity before surgery, and decreased mechanical pain 7 days, but not 28 days, after surgery. At the cellular level, Cav3.2 participated in the low-threshold currents of PKC{gamma} neurons and the T-type calcium current of PKC{gamma} neurons was decreased in KO mice as compared to wild-type (WT). This loss did not convert into proportional alterations in subthreshold properties including "rebound" potentials, suggesting the involvement of other T-type channels. Action potential kinetics and firing properties seemed similar in WT and KO mice too, but rebound potentials were diminished in the SNI model in WT but not in KO mice. In addition, the modulations of firing properties induced by T-type channel pharmacological blocker Z944 observed in WT mice were absent in KO mice and after SNI. Furthermore, the pairing of action potentials was modified after SNI in WT mice, and not in KO mice. At the synaptic level, excitatory currents were lowered 7- and 28-days after surgery, while inhibitory currents were lowered only at 28 days. These changes were not found in Cav3.2-ablated neurons. Miniature currents analysis indicated that Cav3.2 was involved in both excitatory and inhibitory synaptic transmissions at the level of PKC{gamma} neurons. Surprisingly, Z944 did not mimic the effects of Cav3.2 ablation in PKC{gamma} neurons, suggesting distinct and eventually opposite roles of other T-type calcium channels. Altogether, our results show that Cav3.2 is not mandatory for firing of PKC{gamma} neurons of the dorsal horn of the spinal cord, but that it participates to the SNI-induced changes in their intrinsic and synaptic activity, including changes in their excitatory and inhibitory controls. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=147 SRC="FIGDIR/small/627933v1_ufig1.gif" ALT="Figure 1"> View larger version (39K): org.highwire.dtl.DTLVardef@1a297daorg.highwire.dtl.DTLVardef@19f7a76org.highwire.dtl.DTLVardef@120f688org.highwire.dtl.DTLVardef@119658e_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Voltage tunes mGlu5 receptor function, impacting synaptic transmission

Voltage sensitivity is a common feature of many membrane proteins, including some G-protein coupled receptors (GPCRs). However, the functional consequences of voltage sensitivity in GPCRs are not well understood. In this study, we investigated the voltage sensitivity of the post-synaptic metabotropic glutamate receptor mGlu5 and its impact on synaptic transmission. Using biosensors and electrophysiological recordings in non-excitable HEK293T cells or neurons, we found that mGlu5 receptor function is optimal at resting membrane potentials. We observed that membrane depolarization significantly reduced mGlu5 receptor activation, Gq-PLC/PKC stimulation, Ca2+ release, and mGlu5 receptor-gated currents through TRPC6 channels or NMDA receptors. Notably, we report a previously unknown activity of the NMDA receptor at the resting potential of neurons, enabled by mGlu5. Our findings suggest that mGlu5 receptor activity is directly regulated by membrane voltage which may have a significant impact on synaptic processes and pathophysiological functions.

neuroscience↗