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Published on: December 31, 2013
In vitro characterization of the thermoneutral transient receptor potential vanilloid-1 (TRPV1) inhibitor GRTE16523
Nils Damann1, Gregor Bahrenberg1, Hannelore Stockhausen1
1Research & Development, Grünenthal, Zieglerstrasse 6, D-52078 Aachen, Germany.
Abstract:
The TRPV1 ion channel is a neuronal sensor that plays an important role in nociception and neuropathic as well as inflammatory pain. In clinical trials, hyperthermia and thermo-hypoaesthesia turned out as major side effects of TRPV1 antagonists, preventing successful development of such molecules as analgesics. In vitro studies demonstrated that the TRPV1 ion channel is a polymodal sensor integrating stimuli from molecular modulators with temperature, pH and transmembrane potential. Temperature dependent gating is suggested to constitute the molecular basis for its role in heat sensation and body temperature regulation. Drug discovery scientists since many years seek to obtain "thermoneutral" TRPV1 inhibitors, blocking the channels sensitivity for painful stimuli while keeping its temperature mode of activation unaffected. Aiming for a screening rational for the identification of thermoneutral TRPV1 antagonists, we broadly characterized the prototypic small molecule TRPV1 inhibitors GRT12360V and GRTE16523. In vitro, GRT12360V demonstrated pan-modality inhibition on human, cynomolgus and rodent TRPV1, whereas GRTE16523 selectively bypassed the channels temperature mode on human and cynomolgus TRPV1 and revealed partial agonism on rodent channels. Strikingly, in vivo, GRT12360V induced hyperthermia in all species tested whereas GRTE16523 proved thermoneutral in cynomolgus monkeys and induced hypothermia in rodents. Hence, working out the different in vitro to in vivo correlations of two compounds, we suggest temperature dependent voltage gating as key parameter when screening for thermoneutral TRPV1 inhibitors. We highlight a species difference of molecular TRPV1 pharmacology between primates and rodents and provide a methodological breakthrough to engineer thermoneutral TRPV1 antagonists with improved therapeutic safety.
Insights
Scientists developed a new method to find "thermoneutral" TRPV1 inhibitors, which block pain without causing dangerous body temperature changes. This research improves the safety of potential pain relief drugs.
Area of Science:
- Neuroscience
- Pharmacology
- Pain Research
Background:
- The TRPV1 ion channel is crucial for sensing pain and regulating body temperature.
- TRPV1 antagonists have shown promise for pain relief but cause side effects like hyperthermia.
- Developing thermoneutral TRPV1 inhibitors is a key goal in drug discovery.
Purpose of the Study:
- To establish a screening rational for identifying thermoneutral TRPV1 antagonists.
- To characterize the in vitro and in vivo pharmacology of prototypic TRPV1 inhibitors GRT12360V and GRTE16523.
- To understand species-specific differences in TRPV1 channel pharmacology.
Main Methods:
- In vitro characterization of TRPV1 inhibition across different modalities (molecular, temperature, pH, voltage).
- In vivo assessment of thermoneutrality and side effects in various animal models and non-human primates.
- Comparative analysis of in vitro and in vivo data to identify predictive parameters.
Main Results:
- GRT12360V showed pan-modality inhibition in vitro but induced hyperthermia in vivo across species.
- GRTE16523 selectively bypassed temperature gating in vitro and was thermoneutral in cynomolgus monkeys, but caused hypothermia in rodents.
- Significant species differences in TRPV1 pharmacology were observed between primates and rodents.
Conclusions:
- Temperature-dependent voltage gating is a critical parameter for screening thermoneutral TRPV1 inhibitors.
- GRTE16523 represents a methodological breakthrough for engineering safer TRPV1 antagonists.
- Understanding species-specific pharmacology is essential for successful translation of TRPV1 inhibitors to clinical use.

