Navigation überspringen
Universitätsbibliothek Heidelberg
Standort: ---
Exemplare: ---
heiBIB
 Online-Ressource
Verfasst von:Werland, Fiona [VerfasserIn]   i
 Hirth, Michael [VerfasserIn]   i
 Rukwied, Roman [VerfasserIn]   i
 Ringkamp, Matthias [VerfasserIn]   i
 Turnquist, Brian [VerfasserIn]   i
 Jorum, Ellen [VerfasserIn]   i
 Namer, Barbara [VerfasserIn]   i
 Schmelz, Martin [VerfasserIn]   i
 Obreja, Otilia [VerfasserIn]   i
Titel:Maximum axonal following frequency separates classes of cutaneous unmyelinated nociceptors in the pig
Verf.angabe:Fiona Werland, Michael Hirth, Roman Rukwied, Matthias Ringkamp, Brian Turnquist, Ellen Jorum, Barbara Namer, Martin Schmelz and Otilia Obreja
Jahr:2021
Umfang:16 S.
Fussnoten:First published: 28 December 2020 ; Gesehen am 13.07.2021
Titel Quelle:Enthalten in: The journal of physiology
Ort Quelle:Hoboken, NJ : Wiley-Blackwell, 1878
Jahr Quelle:2021
Band/Heft Quelle:599(2021), 5, Seite 1595-1610
ISSN Quelle:1469-7793
Abstract:Key points C-nociceptors are generally assumed to have a low maximum discharge frequency of 10-30 Hz. However, only mechano-insensitive ‘silent’ C-nociceptors cannot follow electrical stimulation at 5 Hz (75 pulses) whereas polymodal C-nociceptors in the pig follow stimulation at up to 100 Hz without conduction failure. Sensitization by nerve growth factor increases the maximum following frequency of ‘silent’ nociceptors in pig skin and might thereby contribute in particular to intense pain sensations in chronic inflammation. A distinct class of C-nociceptors with mechanical thresholds >150 mN resembles ‘silent’ nociceptors at low stimulation frequencies in pigs and humans, but is capable of 100 Hz discharge and thus is suited to encode painfulness of noxious mechanical stimuli. Abstract Using extracellular single-fibre recordings from the saphenous nerve in pig in vivo, we investigated peak following frequencies (5-100 Hz) in different classes of C-nociceptors and their modulation by nerve growth factor. Classes were defined by sensory (mechano-sensitivity) and axonal characteristics (activity dependent slowing of conduction, ADS). Mechano-insensitive C-nociceptors (CMi) showed the highest ADS (34% ± 8%), followed only 66% ± 27% of 75 pulses at 5 Hz and increasingly blocked conduction at higher frequencies. Three weeks following intradermal injections of nerve growth factor, peak following frequency increased specifically in the sensitized mechano-insensitive nociceptors (20% ± 16% to 38% ± 23% response rate after 72 pulses at 100 Hz). In contrast, untreated polymodal nociceptors with moderate ADS (15.2% ± 10.2%) followed stimulation frequencies of 100 Hz without conduction failure (98.5% ± 6%). A distinct class of C-nociceptors was exclusively sensitive to strong forces above 150 mN. This class had a high ADS (27.2% ± 7.6%), but displayed almost no propagation failure even at 100 Hz stimulation (84.7% ± 17%). Also, among human mechanosensitive nociceptors (n = 153) those with thresholds above 150 mN (n = 5) showed ADS typical of silent nociceptors. C-fibres with particularly high mechanical thresholds and high following frequency form a distinct nociceptor class ideally suited to encode noxious mechanical stimulation under normal conditions when regular silent nociceptors are inactive. Sensitization by nerve growth factor increases maximum discharge frequency of silent nociceptors, thereby increasing the frequency range beyond their physiological limit, which possibly contributes to excruciating pain under inflammatory conditions.
DOI:doi:10.1113/JP280269
URL:kostenfrei: Volltext: https://doi.org/10.1113/JP280269
 kostenfrei: Volltext: https://physoc.onlinelibrary.wiley.com/doi/abs/10.1113/JP280269
 DOI: https://doi.org/10.1113/JP280269
Datenträger:Online-Ressource
Sprache:eng
Sach-SW:axon
 C-fibre
 discharge frequency
 excitability
 nerve growth factor
 pain
 sensitization
K10plus-PPN:1762777614
Verknüpfungen:→ Zeitschrift
 
 
Lokale URL UB: Zum Volltext

Permanenter Link auf diesen Titel (bookmarkfähig):  https://katalog.ub.uni-heidelberg.de/titel/68759600   QR-Code
zum Seitenanfang