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      A Brainstem-Spinal Cord Inhibitory Circuit for Mechanical Pain Modulation by GABA and Enkephalins

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          SUMMARY

          Pain thresholds are, in part, set as a function of emotional and internal states by descending modulation of nociceptive transmission in the spinal cord. Neurons of the rostral ventromedial medulla (RVM) are thought to critically contribute to this process; however, the neural circuits and synaptic mechanisms by which distinct populations of RVM neurons facilitate or diminish pain remain elusive. Here we used in vivo opto/chemogenetic manipulations and trans-synaptic tracing of genetically identified dorsal horn and RVM neurons to uncover an RVM-spinal cord-primary afferent circuit controlling pain thresholds. Unexpectedly, we found that RVM GABAergic neurons facilitate mechanical pain by inhibiting dorsal horn enkephalinergic/GABAergic interneurons. We further demonstrate that these interneurons gate sensory inputs and control pain through temporally coordinated enkephalin- and GABA-mediated presynaptic inhibition of somatosensory neurons. Our results uncover a descending disynaptic inhibitory circuit that facilitates mechanical pain, is engaged during stress, and could be targeted to establish higher pain thresholds.

          In Brief

          François et al. identified a neural circuit that controls mechanical pain thresholds. They demonstrated that GABAergic brainstem neurons regulate the release of the endogenous opioid enkephalin in the spinal cord to modulate inputs from sensory pain fibers.

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          Author and article information

          Journal
          8809320
          1600
          Neuron
          Neuron
          Neuron
          0896-6273
          1097-4199
          17 June 2020
          02 February 2017
          22 February 2017
          12 July 2020
          : 93
          : 4
          : 822-839.e6
          Affiliations
          [1 ]Department of Anesthesiology, Perioperative and Pain Medicine, Department of Molecular and Cellular Physiology, Department of Neurosurgery, Stanford Neurosciences Institute
          [2 ]Department of Electrical Engineering
          [3 ]Howard Hughes Medical Institute, Department of Biology
          [4 ]Nancy Pritzker Laboratory, Department of Psychiatry and Behavioral Sciences
          [5 ]Department of Bioengineering Stanford University, Stanford, CA 94305, USA
          [6 ]Virus Services, Janelia Research Campus, Howard Hughes Medical Institute, Ashburn, VA 20147, USA
          [7 ]Department of Physiology and Cell Information Systems Group, McGill University, Montreal, H3G0B1 QC, Canada
          [8 ]Howard Hughes Medical Institute, Department of Bioengineering, Department of Psychiatry, CNC Program, Stanford University, Stanford, CA 94305, USA
          [9 ]Department of Bioengineering, Department of Mechanical Engineering, Stanford University, Stanford, CA 94305, USA
          [10 ]Janelia Research Campus, Howard Hughes Medical Institute, Ashburn, VA 20147, USA
          [11 ]Lead Contact
          Author notes

          AUTHOR CONTRIBUTIONS

          A.F., S.A.L., and G.S. conceived the project and designed the experiments. A.F. performed electrophysiological, tracing, histological, and behavioral experiments. A.J.C. and S.L.D. helped A.F. to perform spinal optogenetic experiments. S.A.L. performed the histological characterization of RVM neurons projecting to the dorsal horn and some Vgat Cre/hM4Di RVM behavioral experiments. E.I.S. performed all in situ hybridization experiments. C.S. provided technical assistance. A.W.H. generated Penk Cre mice and provided AAV-retro and insightful feedback throughout the project. K.D.R., K.T.B., R.C.M., L.L., R.S.-N., C.R., and K.D. provided viral reagents. A.F., E.I.S., and G.S. wrote the manuscript, and all authors edited the manuscript.

          [* ]Correspondence: gs25@ 123456stanford.edu
          Article
          PMC7354674 PMC7354674 7354674 nihpa1604515
          10.1016/j.neuron.2017.01.008
          7354674
          28162807
          7a454cd3-2315-4dbc-b121-319959947b6c
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