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An ultrafast system for signaling mechanical pain in human skin

  • Saad S. Nagi
  • , Andrew G. Marshall
  • , Adarsh Makdani
  • , Ewa Jarocka
  • , Jaquette Liljencrantz
  • , Mikael Ridderström
  • , Sumaiya Shaikh
  • , Francis O’Neill
  • , Dimah Saade
  • , Sandra Donkervoort
  • , A. Reghan Foley
  • , Jan Minde
  • , Mats Trulsson
  • , Jonathan Cole
  • , Carsten G. Bönnemann
  • , Alexander T. Chesler
  • , M. Catherine Bushnell
  • , Francis McGlone
  • , Håkan Olausson

Research output: Contribution to journalArticlepeer-review

119 Citations (Scopus)
3 Downloads (Pure)

Abstract

The canonical view is that touch is signaled by fast-conducting, thickly myelinated afferents, whereas pain is signaled by slow-conducting, thinly myelinated ("fast" pain) or unmyelinated ("slow" pain) afferents. While other mammals have thickly myelinated afferents signaling pain (ultrafast nociceptors), these have not been demonstrated in humans. Here, we performed single-unit axonal recordings (microneurography) from cutaneous mechanoreceptive afferents in healthy participants. We identified A-fiber high-threshold mechanoreceptors (A-HTMRs) that were insensitive to gentle touch, encoded noxious skin indentations, and displayed conduction velocities similar to A-fiber low-threshold mechanoreceptors. Intraneural electrical stimulation of single ultrafast A-HTMRs evoked painful percepts. Testing in patients with selective deafferentation revealed impaired pain judgments to graded mechanical stimuli only when thickly myelinated fibers were absent. This function was preserved in patients with a loss-of-function mutation in mechanotransduction channel PIEZO2. These findings demonstrate that human mechanical pain does not require PIEZO2 and can be signaled by fast-conducting, thickly myelinated afferents.
Original languageEnglish
Article numbereaaw1297
Number of pages11
JournalScience Advances
Volume5
Issue number7
DOIs
Publication statusPublished - 2019

Open Access - Access Right Statement

Copyright © 2019 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC). (https://creativecommons.org/licenses/by/4.0/)

Keywords

  • mammals
  • mechanoreceptors
  • pain
  • skin

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