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Published on: February 13, 2018
TRPV1 antagonist BCTC inhibits pH 6.0-induced pain in human skin
Stefan Heber1, Cosmin I Ciotu1, Gabriel Hartner1
1Institute of Physiology, Center for Physiology and Pharmacology, Medical University of Vienna, Vienna, Austria.
Abstract:
Tissue acidosis due to ischemia occurs under several pathological conditions and is believed to contribute to pain in these circumstances. TRPV1, TRPA1, and ASICs are known to be sensitive to acidic pH. Addressing their possible role in acidosis perception, the respective antagonists BCTC, A-967079, and amiloride were injected in the volar forearm skin of 32 healthy volunteers. To investigate possible redundancies between channels, a full-factorial study design was used. Injections were performed in a prerandomized, double-blind, and balanced design. Each injection included a three-step pH protocol from pH 7.0 over pH 6.5 to pH 6.0 with a step duration of 90 seconds. Pain was reported by volunteers on a numerical scale every 10 seconds during injections. Confirming the primary hypothesis, the combination of all 3 antagonists reduced acid-induced pain at pH 6.0. Because of the full-factorial design, it could be concluded that BCTC alone, but not A-967079 or amiloride, or any combination thereof, was responsible for the observed effects, suggesting TRPV1 as primary sensor for pH 6.0-induced pain. Surprisingly, A-967079 even enhanced pain induced by pH 6.0. In cultured mouse dorsal root ganglion neurons, TPRV1 dependence of pH 6-induced calcium responses could be confirmed. Responses of hTRPV1 to acidic stimulation showed a maximum around pH6, providing an explanation for the pH-dependent inhibition by BCTC. A-967079 sensitizes pH responses is a TRPA1-responsive dorsal root ganglion neuron population, and a direct effect of A-967079 on hTRPA1 and hTRPV1 was excluded. In conclusion, inhibiting TRPV1-mediated acidosis-induced pain could be a symptomatic and potentially also a disease-modifying approach.
Insights
This study found that blocking the TRPV1 channel significantly reduced pain caused by tissue acidosis. This suggests TRPV1 is a key sensor for acid-induced pain, offering a potential therapeutic target.
Area of Science:
- Neuroscience
- Pain Research
- Molecular Biology
Background:
- Tissue acidosis from ischemia is linked to pain perception.
- Transient Receptor Potential Vanilloid 1 (TRPV1), TRP Ankyrin 1 (TRPA1), and Acid-Sensing Ion Channels (ASICs) are implicated in sensing acidic pH.
Purpose of the Study:
- To investigate the roles of TRPV1, TRPA1, and ASICs in acidosis-induced pain perception.
- To determine if these channels exhibit redundancy in sensing acidic conditions.
Main Methods:
- A full-factorial study design was employed with 32 healthy volunteers.
- Antagonists for TRPV1 (BCTC), TRPA1 (A-967079), and ASICs (amiloride) were injected into volar forearm skin.
- A three-step pH protocol (pH 7.0, 6.5, 6.0) was used, with pain reported on a numerical scale.
Main Results:
- The combination of all three antagonists reduced acid-induced pain at pH 6.0.
- BCTC (TRPV1 antagonist) alone significantly reduced pain, indicating TRPV1 as the primary sensor for pH 6.0-induced pain.
- A-967079 (TRPA1 antagonist) unexpectedly enhanced pain, and amiloride (ASIC antagonist) had no significant effect.
Conclusions:
- TRPV1 is the primary sensor for pain induced by pH 6.0.
- Inhibiting TRPV1 may offer a symptomatic and disease-modifying treatment for acidosis-induced pain.
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