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Fernandez-Trillo, J.

Publications and source records attributed to Fernandez-Trillo, J..

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The ion channel TRPM8 is a direct target of the immunosuppressant rapamycin in primary sensory neurons

Background and PurposeThe mechanistic target of rapamycin (mTOR) signaling pathway is a key regulator of cell growth and metabolism. Its deregulation is implicated in several diseases. The macrolide rapamycin (RAP), a specific inhibitor of mTOR, has immunosuppressive, anti-inflammatory and antiproliferative properties. Recently, we identified tacrolimus, another macrolide immunosuppressant, as a novel activator of TRPM8 ion channels, involved in cold temperature sensing, thermoregulation, tearing and cold pain. We hypothesized that RAP may also have agonist activity on TRPM8. Experimental approachUsing calcium imaging and electrophysiology in transfected HEK293 cells and wildtype or Trpm8 KO mouse DRG neurons, we characterized RAP effects on TRPM8. We also examined the effects of RAP on tearing in mice. Key ResultsMicromolar concentrations of RAP activate rat and mouse TRPM8 directly and potentiate cold-evoked responses. These effects were also observed in human TRPM8. In cultured mouse DRG neurons, RAP evoked an increase in intracellular calcium almost exclusively in cold-sensitive neurons. Responses were drastically blunted in Trpm8 KO mice or by TRPM8 antagonists. Cutaneous cold thermoreceptor endings were also activated by RAP. Topical application of RAP to the eye surface evokes tearing in mice by a TRPM8-dependent mechanism. Conclusion and implicationsThese results identify TRPM8 cationic channels in sensory neurons as novel molecular targets of the immunosuppressant RAP. These findings may help explain some of its therapeutic effects after topical application to the skin and the eye surface. Moreover, RAP could be used as an experimental tool in the clinic to explore cold thermoreceptors. Bullet point summaryWHAT IS ALREADY KNOWN O_LITRPM8 is a polymodal channel involved in cold detection, thermoregulation, tearing and cold pain C_LIO_LITacrolimus, a macrolide immunosupressor, is an agonist of cold-activated TRPM8 channels C_LI WHAT THIS STUDY ADDS O_LIThe macrolide rapamycin also activates directly TRPM8 channels in mouse sensory neurons and human TRPM8 C_LIO_LIRapamycin stimulates tearing in mice in a TRPM8-dependent manner CLINICAL SIGNIFICANCE C_LIO_LIRapamycin, an FDA-approved drug, shows agonist activity on TRPM8 channels C_LIO_LIBeneficial effects of rapamycin and other macrolides on inflammatory ocular disorders may involve TRPM8 activation C_LI

neuroscience↗

Validation of six commercial antibodies for detection of heterologous and endogenous TRPM8 ion channel expression

TRPM8 is a non-selective cation channel expressed in primary sensory neurons and other tissues, including prostate and urothelium. Its participation in different physiological and pathological processes such as thermoregulation, pain, itch, inflammation and cancer has been widely described, making it a promising target for therapeutic approaches. The detection and quantification of TRPM8 seems crucial for advancing in the knowledge of the mechanisms under-lying its role in these pathophysiological conditions. Antibody-based techniques are commonly used for protein detection and quantification, although their performance with many ion channels, including TRPM8, is suboptimal. Thus, the search for reliable antibodies is of utmost importance. In this study, we characterized the performance of six TRPM8 commercial antibodies in three immunodetection techniques: western blot, immunocytochemistry and immunohistochemistry. Different outcomes were obtained for the tested antibodies; two of them proved to be successful detecting TRPM8 in the three approaches while, in the conditions tested, the other four were acceptable only for specific techniques. Considering our results, we offer some insight into the usefulness of these antibodies for detection of TRMP8 depending on the methodology of choice.

neuroscience↗