Multiple roles for NaV1.9 in the activation of visceral afferents by noxious inflammatory, mechanical, and human disease-derived stimuli.
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Authors
Hockley, James RF
Boundouki, George
Cibert-Goton, Vincent
McGuire, Cian
Yip, Ping K
Chan, Christopher
Tranter, Michael
Wood, John N
Nassar, Mohammed A
Blackshaw, L Ashley
Aziz, Qasim
Michael, Gregory J
Baker, Mark D
Winchester, Wendy J
Knowles, Charles H
Bulmer, David C
Publication Date
2014-10Journal Title
Pain
ISSN
0304-3959
Publisher
Ovid Technologies (Wolters Kluwer Health)
Volume
155
Issue
10
Pages
1962-1975
Language
eng
Type
Article
Physical Medium
Print-Electronic
Metadata
Show full item recordCitation
Hockley, J. R., Boundouki, G., Cibert-Goton, V., McGuire, C., Yip, P. K., Chan, C., Tranter, M., et al. (2014). Multiple roles for NaV1.9 in the activation of visceral afferents by noxious inflammatory, mechanical, and human disease-derived stimuli.. Pain, 155 (10), 1962-1975. https://doi.org/10.1016/j.pain.2014.06.015
Abstract
Chronic visceral pain affects millions of individuals worldwide and remains poorly understood, with current therapeutic options constrained by gastrointestinal adverse effects. Visceral pain is strongly associated with inflammation and distension of the gut. Here we report that the voltage-gated sodium channel subtype NaV1.9 is expressed in half of gut-projecting rodent dorsal root ganglia sensory neurons. We show that NaV1.9 is required for normal mechanosensation, for direct excitation and for sensitization of mouse colonic afferents by mediators from inflammatory bowel disease tissues, and by noxious inflammatory mediators individually. Excitatory responses to ATP or PGE2 were substantially reduced in NaV1.9(-/-) mice. Deletion of NaV1.9 substantially attenuates excitation and subsequent mechanical hypersensitivity after application of inflammatory soup (IS) (bradykinin, ATP, histamine, PGE2, and 5HT) to visceral nociceptors located in the serosa and mesentery. Responses to mechanical stimulation of mesenteric afferents were also reduced by loss of NaV1.9, and there was a rightward shift in stimulus-response function to ramp colonic distension. By contrast, responses to rapid, high-intensity phasic distension of the colon are initially unaffected; however, run-down of responses to repeat phasic distension were exacerbated in NaV1.9(-/-) afferents. Finally colonic afferent activation by supernatants derived from inflamed human tissue was greatly reduced in NaV1.9(-/-) mice. These results demonstrate that NaV1.9 is required for persistence of responses to intense mechanical stimulation, contributes to inflammatory mechanical hypersensitivity, and is essential for activation by noxious inflammatory mediators, including those from diseased human bowel. These observations indicate that NaV1.9 represents a high-value target for development of visceral analgesics.
Keywords
Distal colon, Inflammatory bowel disease, Na(V)1.9, Nociceptor sensitivity, Noxious distension, Supernatants, Visceral hypersensitivity, Visceral pain, Voltage-gated sodium channel, Action Potentials, Adenosine Triphosphate, Adolescent, Adult, Aged, Animals, Colon, Dinoprostone, Female, Ganglia, Spinal, Humans, Hyperalgesia, Inflammation, Inflammatory Bowel Diseases, Male, Mice, Mice, Knockout, Middle Aged, NAV1.9 Voltage-Gated Sodium Channel, Physical Stimulation, Visceral Afferents, Young Adult
Identifiers
External DOI: https://doi.org/10.1016/j.pain.2014.06.015
This record's URL: https://www.repository.cam.ac.uk/handle/1810/280190
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