Abstract
Mechanosensory channels of sensory cells mediate the sensations of hearing, touch, and some forms of pain. The TRPA1 (a member of the TRP family of ion channel proteins) channel is activated by pain-producing chemicals, and its inhibition impairs hair cell mechanotransduction. As shown here and previously, TRPA1 is expressed by hair cells as well as by most nociceptors (small neurons of dorsal root, trigeminal, and nodose ganglia) and localizes to their sensory terminals (mechanosensory stereocilia and peripheral free nerves, respectively). Thus, TRPA1 channels are proposed to mediate transduction in both hair cells and nociceptors. Accordingly, we find that heterologously expressed TRPA1 display channel behaviors expected for both auditory and nociceptive transducers. First, TRPA1 and the hair cell transducer share a unique set of pore properties not described for any other channel (block by gadolinium, amiloride, gentamicin, and ruthenium red, a ranging conductance of approximately 100 pS that is reduced to 54% by calcium, permeating calcium-induced potentiation followed by closure, and reopening by depolarization), supporting a direct role of TRPA1 as a pore-forming subunit of the hair cell transducer. Second, TRPA1 channels inactivate in hyperpolarized cells but remain open in depolarized cells. This property provides a mechanism for the lack of desensitization, coincidence detection, and allodynia that characterize pain by allowing a sensory neuron to respond constantly to sustained stimulation that is suprathreshold (i.e., noxious) and yet permitting the same cell to ignore sustained stimulation that is subthreshold (i.e., innocuous). Our results support a TRPA1 role in both nociceptor and hair cell transduction.
MeSH Terms
Actins/metabolism
Amiloride/pharmacology
Animals
Animals, Newborn
Blotting, Western/methods
Calcium/metabolism
Cell Count/methods
Cell Line
Cloning, Molecular/methods
Dose-Response Relationship, Drug
Drug Interactions
Electric Stimulation/methods
Gadolinium/pharmacology
Ganglia/cytology
Gentamicins/pharmacology
Hair Cells, Auditory/drug effects,physiology
Hearing/physiology
Humans
Immunohistochemistry/methods
In Situ Hybridization/methods
Intermediate Filament Proteins/metabolism
Isothiocyanates/pharmacology
Mechanoreceptors/physiology
Membrane Glycoproteins/metabolism
Membrane Potentials/drug effects,physiology,radiation effects
Mice
Nerve Tissue Proteins/metabolism
Neurofilament Proteins/metabolism
Neurons, Afferent/classification,drug effects,metabolism,physiology,radiation effects
Nociceptors/drug effects,physiology
Pain/physiopathology
Patch-Clamp Techniques/methods
Peripherins
RNA, Messenger/metabolism
Ruthenium Red/pharmacology
TRPA1 Cation Channel
Transfection/methods
Transient Receptor Potential Channels/genetics,physiology
Ubiquitin Thiolesterase/metabolism
Chemicals
Actins
Gentamicins
Intermediate Filament Proteins
Isothiocyanates
Membrane Glycoproteins
Nerve Tissue Proteins
Neurofilament Proteins
Peripherins
RNA, Messenger
TRPA1 Cation Channel
Transient Receptor Potential Channels
Trpa1 protein, mouse
neurofilament protein H
Ruthenium Red
2,3,4-tri-O-acetylarabinopyranosyl isothiocyanate
Amiloride
Gadolinium
Ubiquitin Thiolesterase
Uchl1 protein, mouse
Calcium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Nagata Keiichi
Department of Anesthesiology, Northwestern University Feinberg School of Medicine, Chicago, Illinois 60611, USA.
Duggan Anne
Kumar Gagan
García-Añoveros Jaime
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