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1.
Mol Pain ; 11: 64, 2015 Oct 13.
Article in English | MEDLINE | ID: mdl-26463733

ABSTRACT

BACKGROUND: Presynaptic GABAA receptors (GABAARs) located on central terminals of low threshold afferent fibers are thought to be involved in the processing of touch and possibly in the generation of tactile allodynia in chronic pain. These GABAARs mediate primary afferent depolarization (PAD) and modulate transmitter release. The objective of this study was to expand our understanding of the presynaptic inhibitory action of GABA released onto primary afferent central terminals following afferent stimulation. RESULTS: We recorded evoked postsynaptic excitatory responses (eEPSCs and eEPSPs) from lamina III/IV neurons in spinal cord slices from juvenile rats (P17-P23, either sex), while stimulating dorsal roots. We investigated time and activity dependent changes in glutamate release from low threshold A fibers and the impact of these changes on excitatory drive. Blockade of GABAARs by gabazine potentiated the second eEPSC during a train of four afferent stimuli in a large subset of synapses. This resulted in a corresponding increase of action potential firing after the second stimulus. The potentiating effect of gabazine was due to inhibition of endogenously activated presynaptic GABAARs, because it was not prevented by the blockade of postsynaptic GABAARs through intracellular perfusion of CsF. Exogenous activation of presynaptic GABAARs by muscimol depressed evoked glutamate release at all synapses and increased paired pulse ratio (PPR). CONCLUSIONS: These observations suggest that afferent driven release of GABA onto low threshold afferent terminals is most effective following the first action potential in a train and serves to suppress the initial strong excitatory drive onto dorsal horn circuitry.


Subject(s)
Neurons, Afferent/metabolism , Neurotransmitter Agents/metabolism , Receptors, GABA-A/metabolism , Sensory Thresholds , Spinal Cord Dorsal Horn/metabolism , Action Potentials/drug effects , Animals , Excitatory Postsynaptic Potentials/drug effects , Female , Male , Models, Neurological , Muscimol/pharmacology , Neurons, Afferent/drug effects , Pyridazines/pharmacology , Rats, Sprague-Dawley , Receptors, Glycine/metabolism , Sensory Thresholds/drug effects , Spinal Cord Dorsal Horn/drug effects , Synapses/drug effects , Synapses/metabolism
2.
Neuron ; 81(6): 1312-1327, 2014 Mar 19.
Article in English | MEDLINE | ID: mdl-24583022

ABSTRACT

Cutaneous mechanosensory neurons detect mechanical stimuli that generate touch and pain sensation. Although opioids are generally associated only with the control of pain, here we report that the opioid system in fact broadly regulates cutaneous mechanosensation, including touch. This function is predominantly subserved by the delta opioid receptor (DOR), which is expressed by myelinated mechanoreceptors that form Meissner corpuscles, Merkel cell-neurite complexes, and circumferential hair follicle endings. These afferents also include a small population of CGRP-expressing myelinated nociceptors that we now identify as the somatosensory neurons that coexpress mu and delta opioid receptors. We further demonstrate that DOR activation at the central terminals of myelinated mechanoreceptors depresses synaptic input to the spinal dorsal horn, via the inhibition of voltage-gated calcium channels. Collectively our results uncover a molecular mechanism by which opioids modulate cutaneous mechanosensation and provide a rationale for targeting DOR to alleviate injury-induced mechanical hypersensitivity.


Subject(s)
Mechanoreceptors/physiology , Neurons/physiology , Nociceptors/physiology , Receptors, Opioid, delta/metabolism , Spinal Cord/metabolism , Analgesics, Opioid/pharmacology , Animals , Calcium Channels/metabolism , Ganglia, Spinal/drug effects , Ganglia, Spinal/physiology , Mechanoreceptors/drug effects , Mice , Mice, Inbred C57BL , Neurons/drug effects , Nociceptors/drug effects , Pain/physiopathology , Spinal Cord/drug effects
4.
J Physiol ; 588(Pt 5): 831-46, 2010 Mar 01.
Article in English | MEDLINE | ID: mdl-20083514

ABSTRACT

By releasing neuroactive agents, including proinflammatory cytokines, prostaglandins and neurotrophins, microglia and astrocytes are proposed to be involved in nociceptive transmission, especially in conditions of persistent, pathological pain. The specific action on dorsal horn neurons of agents released from astrocytes, such as glutamate, has been, however, poorly investigated. By using patch-clamp and confocal microscope calcium imaging techniques in rat spinal cord slices, we monitored the activity of dorsal horn lamina II neurons following astrocyte activation. Results obtained revealed that stimuli that triggered Ca(2+) elevations in astrocytes, such as the purinergic receptor agonist BzATP and low extracellular Ca(2+), induce in lamina II neurons slow inward currents (SICs). Similarly to SICs triggered by astrocytic glutamate in neurons from other central nervous system regions, these currents (i) are insensitive to tetrodotoxin (TTX), (ii) are blocked by the NMDA receptor (NMDAR) antagonist d-AP5, (iii) lack an AMPA component, and (iv) have slow rise and decay times. Ca(2+) imaging also revealed that astrocytic glutamate evokes NMDAR-mediated episodes of synchronous activity in groups of substantia gelatinosa neurons. Importantly, in a model of peripheral inflammation, the development of thermal hyperalgesia and mechanical allodynia was accompanied by a significant increase of spontaneous SICs in dorsal horn neurons. The NMDAR-mediated astrocyte-to-neuron signalling thus represents a novel pathway that may contribute to the control of central sensitization in pathological pain.


Subject(s)
Astrocytes/physiology , Calcium Signaling/physiology , Glutamic Acid/metabolism , Neurons/physiology , Posterior Horn Cells/physiology , Signal Transduction/physiology , Animals , Neurotransmitter Agents/metabolism , Rats , Rats, Sprague-Dawley
5.
Prog Neurobiol ; 85(3): 297-317, 2008 Jul.
Article in English | MEDLINE | ID: mdl-18514997

ABSTRACT

At least some neurotrophins may be powerful modulators of synapses, thereby influencing short- and long-term synaptic efficiency. BDNF acts at central synapses in pain pathways both at spinal and supraspinal levels. Neuronal synthesis, subcellular storage/co-storage and release of BDNF at these synapses have been characterized on anatomical and physiological grounds, in parallel with trkB (the high affinity BDNF receptor) distribution. Histological and functional evidence has been provided, mainly from studies on acute slices and intact animals, that BDNF modulates fast excitatory (glutamatergic) and inhibitory (GABAergic/glycinergic) signals, as well as slow peptidergic neurotrasmission in spinal cord. Recent studies have unraveled some of the neuronal circuitries and mechanisms involved, highlighting the key role of synaptic glomeruli in lamina II as the main sites for such a modulation.


Subject(s)
Brain-Derived Neurotrophic Factor/metabolism , Pain/metabolism , Animals , Humans , Models, Biological , Neural Pathways/physiology , Neuronal Plasticity/physiology , Neurons, Afferent/drug effects , Neurons, Afferent/physiology , Nociceptors/metabolism , Pain Management , Receptor, trkB/physiology , Signal Transduction/physiology
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