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Direct modulation of TRPM8 ion channels by rapamycin and analog macrolide immunosuppressants
Balázs István Tóth1,2, Bahar Bazeli2,3, Annelies Janssens2,3
1Laboratory of Cellular and Molecular Physiology, Department of Physiology, Faculty of Medicine, University of Debrecen, Debrecen, Hungary.
Abstract:
Rapamycin (sirolimus), a macrolide compound isolated from the bacterium Streptomyces hygroscopicus, is widely used as oral medication for the prevention of transplant rejection and the treatment of lymphangioleiomyomatosis. It is also incorporated in coronary stent coatings to prevent restenosis and in topical preparations for the treatment of skin disorders. Rapamycin's in vivo activities are generally ascribed to its binding to the protein FKBP12, leading to potent inhibition of the mechanistic target of rapamycin kinase (mTOR) by the FKBP12-rapamycin complex. The specific rapamycin-induced interaction between domains from mTOR and FKBP12 is also frequently employed in cell biological research, for rapid chemically-induced protein dimerization strategies. Here, we show that rapamycin activates TRPM8, a cation channel expressed in sensory nerve endings that serves as the primary cold sensor in mammals. Using a combination of electrophysiology, Saturation Transfer Triple-Difference (STTD) NMR spectroscopy, and molecular docking-based targeted mutagenesis, we demonstrate that rapamycin directly binds to human TRPM8. We identify a rapamycin-binding site in the groove between voltage sensor-like domain and the pore domain, distinct from the interaction sites of cooling agents and known TRPM8 agonists menthol and icilin. Related macrolide immunosuppressants act as partial TRPM8 agonists, competing with rapamycin for the same binding site. These findings identify a novel molecular target for rapamycin and provide new insights into the mechanisms of TRPM8 activation, which may assist in the development of therapies targeting this ion channel. Moreover, our findings also indicate that caution is needed when using molecular approaches based on rapamycin-induced dimerization to study ion channel regulation.
Insights
The immunosuppressant rapamycin directly activates the TRPM8 cold channel by binding to a unique site. This discovery reveals a new target for rapamycin and offers insights into TRPM8 channel regulation.
Area of Science:
- Molecular Pharmacology
- Ion Channel Biology
- Drug Discovery
Background:
- Rapamycin (sirolimus) is an immunosuppressant used clinically for transplant rejection and lymphangioleiomyomatosis.
- Its known mechanism involves inhibiting the mechanistic target of rapamycin kinase (mTOR) via FKBP12 binding.
- Rapamycin-induced dimerization is a tool in cell biology research.
Purpose of the Study:
- To investigate rapamycin's effect on the TRPM8 (Transient Receptor Potential Melastatin 8) ion channel.
- To identify the molecular mechanism and binding site of rapamycin on TRPM8.
- To explore potential therapeutic implications and research tool limitations.
Main Methods:
- Electrophysiology to measure TRPM8 channel activity.
- Saturation Transfer Triple-Difference (STTD) NMR spectroscopy for structural analysis.
- Molecular docking and targeted mutagenesis to identify binding sites.
Main Results:
- Rapamycin directly binds to and activates human TRPM8 channels.
- A novel rapamycin-binding site was identified in the TRPM8 channel, distinct from known agonist sites.
- Related macrolides act as partial agonists, competing for the same binding site.
Conclusions:
- Rapamycin has a novel function as a direct TRPM8 channel activator.
- This finding provides new mechanistic insights into TRPM8 activation.
- Caution is advised for rapamycin-based dimerization strategies in ion channel research.
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