Conotoxins That Could Provide Analgesia through Voltage Gated Sodium Channel Inhibition
Abstract
:1. Introduction
2. NaV Channels Structure
3. NaV Channel Subtypes
4. Roles of Sodium Channels in Nociception and Chronic Pain
5. Toxin Interaction with NaV Channels
5.1. μ-Conotoxins that Interact with Binding Site 1
μ-Conotoxin Type | Conus Species | Primary NaV Channel Targets |
---|---|---|
GIIIA | geographus | NaV1.4 [59,60] |
GIIIB | geographus | NaV1.4 [61] |
GIIIC | geographus | NaV1.4 [3,62] |
PIIIA | purpurascens | NaV1.4, 1.2, 1.7 [63,64] |
TIIIA | tulipa | NaV1.4, 1.2 [65,66] |
BuIIIA | bullatus | NaV1.4 [67] |
BuIIIB | bullatus | NaV1.3, NaV1.4 [67,68,69] |
BuIIIC | bullatus | NaV1.4 [67] |
SmIIIA | stercusmuscarum | NaV1.8 [70,71] |
SIIIA | striatus | NaV1.2, 1.3, 1.4 [72,73] |
KIIIA | kinoshitai | NaV1.2, 1.3, 1.4, 1.5, 1.6 [74,75] |
5.2. Binding Site 2 and 3 with No Major Conotoxin Interactions
5.3. µO- and Possibly ι-Conotoxin Binding Site 4
5.4. Site 5 Does Not Show Major Conotoxin Interactions
5.5. δ-Conotoxin Binding Site 6
δ-Conotoxin Type | Conus Species | Primary NaV Channel Targets |
---|---|---|
TxVIA | textile | Undetermined (no activity in mammals) [113,114,115] |
PVIA | purpurascens | NaV1.2, 1.4, 1.7 [64,116] |
SVIE | striatus | NaV1.4 [112] |
GmVIA | gloriamaris | NaV1.2, 1.4 [117,118] |
EVIA | ermineus | NaV1.2, 1.3, 1.6 [119] |
TsVIA | tessulatus | NaV1.6 [120] |
SuVIA | suturatus | NaV1.3, 1.4, 1.6 and 1.7 [121] |
5.6. Site 7 Does Not Show Major Conotoxin Interactions
5.7. µO§-GVIIJ Conotoxin Binding Site 8
5.8. Local Anesthetic Binding Site
6. Future of Conotoxins As Potential Analgesics
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Munasinghe, N.R.; Christie, M.J. Conotoxins That Could Provide Analgesia through Voltage Gated Sodium Channel Inhibition. Toxins 2015, 7, 5386-5407. https://doi.org/10.3390/toxins7124890
Munasinghe NR, Christie MJ. Conotoxins That Could Provide Analgesia through Voltage Gated Sodium Channel Inhibition. Toxins. 2015; 7(12):5386-5407. https://doi.org/10.3390/toxins7124890
Chicago/Turabian StyleMunasinghe, Nehan R., and MacDonald J. Christie. 2015. "Conotoxins That Could Provide Analgesia through Voltage Gated Sodium Channel Inhibition" Toxins 7, no. 12: 5386-5407. https://doi.org/10.3390/toxins7124890
APA StyleMunasinghe, N. R., & Christie, M. J. (2015). Conotoxins That Could Provide Analgesia through Voltage Gated Sodium Channel Inhibition. Toxins, 7(12), 5386-5407. https://doi.org/10.3390/toxins7124890