Non-conventional axonal organelles control TRPM8 ion channel trafficking and peripheral cold sensing
Author
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Cornejo, Víctor Hugo
Author
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González, Carolina
Author
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Campos, Matías
Author
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Vargas Saturno, Leslie
Author
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Juricic, María de los Ángeles
Author
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Miserey Lenkei, Stéphanie
Author
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Pertusa, María
Author
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Madrid, Rodolfo
Author
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Couve, Andrés
Admission date
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2020-04-25T22:58:43Z
Available date
dc.date.available
2020-04-25T22:58:43Z
Publication date
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2020
Cita de ítem
dc.identifier.citation
Cell Reports 30, 4505–4517 March 31, 2020
es_ES
Identifier
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10.1016/j.celrep.2020.03.017
Identifier
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https://repositorio.uchile.cl/handle/2250/174129
Abstract
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TRPM8 is the main ion channel responsible for cold transduction in the somatosensory system. Nerve terminal availability of TRPM8 determines cold sensitivity, but how axonal secretory organelles control channel delivery remains poorly understood. Here we examine the distribution of TRPM8 and trafficking organelles in cold-sensitive peripheral axons and disrupt trafficking by targeting the ARF-GEF GBF1 pharmacologically or the small GTPase RAB6 by optogenetics. In axons of the sciatic nerve, inhibition of GBF1 interrupts TRPM8 trafficking and increases association with the trans-Golgi network, LAMP1, and Golgi satellites, which distribute profusely along the axonal shaft. Accordingly, both TRPM8-dependent ongoing activity and cold-evoked responses reversibly decline upon GBF1 inhibition in nerve endings of corneal cold thermoreceptors. Inhibition of RAB6, which also associates to Golgi satellites, decreases cold-induced responses in vivo. Our results support a non-conventional axonal trafficking mechanism controlling the availability of TRPM8 in axons and cold sensitivity in the peripheral nervous system.
es_ES
Patrocinador
dc.description.sponsorship
Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT), CONICYT FONDECYT: 3160725, 3160666, 1161733, 1170307
DI-CYT-USACH: 021843PP
Iniciativa Cientifica Milenio, Biomedical Neuroscience Institute: ICM P09-015-F
Millennium Nucleus of Ion Channel-Associated Diseases (MiNICAD)
VRIDEI-USACH