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Thompson, R. J.

Publications and source records attributed to Thompson, R. J..

2 recordsLinked to original sources

TRPV1 regulates opioid analgesia during inflammation

Acute inflammation in humans or mice enhances the analgesic properties of opioids. However, the inflammatory transducers that prime opioid receptor signaling in nociceptors are unknown. We found that TRPV1-/- mice are insensitive to peripheral opioid analgesia in an inflammatory pain model. We report that TRPV1 channel activation drives a MAPK signaling pathway accompanied by the shuttling of {beta}-arrestin2 to the nucleus. This shuttling in turn prevents: {beta}-arrestin2-receptor recruitment, subsequent internalization of agonist-bound mu opioid receptor (MOR), and suppression of DAMGO-induced inhibition of N-type calcium current observed upon desensitization. Consequently, inflammation-induced activation of TRPV1 preserves opioid analgesic potency in a mouse model of opioid receptor desensitization. Overall, our work reveals a TRPV1-mediated signaling mechanism, involving {beta}-arrestin2 nuclear translocation, that underlies the peripheral opioid control of inflammatory pain. Our data single out TRPV1 channels as modulators of opioid analgesia.

neuroscience

Postsynaptic Pannexin-1 Facilitates Anandamide Uptake to Modulate Glutamate Release and Enhance Network Excitability

Prolonged neurotransmitter release following synaptic stimulation extends the time window for postsynaptic neurons to respond to presynaptic activity. This can enhance excitability and increase synchrony of outputs, but the prevalence of this at normally highly synchronous synapses is unclear. We show that the postsynaptic channel, pannexin-1 (Panx1) regulates prolonged glutamate release onto CA1 neurons. Block of postsynaptic (CA1 neuronal) Panx1 increased the frequency of glutamate neurotransmission and action potentials in these neurons following Schaffer collateral stimulation. When Panx1 was blocked, anandamide levels increase and activated transient receptor potential vanilloid 1 (TRPV1)-mediated glutamate release. This TRPV1-induced synaptic acitvity enhanced excitability and translated into a faster rate of TRPV1-dependent epileptogenesis induced by kindling. We conclude that Panx1 facilitates AEA clearance to maintain synchronous release onto CA1 neurons so that when AEA clearance is reduced, TRPV1 channels prolong glutamate neurotransmission to enhance network output to promote epileptiform activity.

neuroscience