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Featured ArticleArticles, Cellular/Molecular

The Vanilloid Receptor TRPV1 Is Tonically Activated In Vivo and Involved in Body Temperature Regulation

Narender R. Gavva, Anthony W. Bannon, Sekhar Surapaneni, David N. Hovland Jr, Sonya G. Lehto, Anu Gore, Todd Juan, Hong Deng, Bora Han, Lana Klionsky, Rongzhen Kuang, April Le, Rami Tamir, Jue Wang, Brad Youngblood, Dawn Zhu, Mark H. Norman, Ella Magal, James J. S. Treanor and Jean-Claude Louis
Journal of Neuroscience 28 March 2007, 27 (13) 3366-3374; DOI: https://doi.org/10.1523/JNEUROSCI.4833-06.2007
Narender R. Gavva
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Anthony W. Bannon
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Sekhar Surapaneni
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David N. Hovland Jr
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Sonya G. Lehto
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Anu Gore
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Todd Juan
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Hong Deng
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Bora Han
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Lana Klionsky
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Rongzhen Kuang
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April Le
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Rami Tamir
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Jue Wang
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Brad Youngblood
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Dawn Zhu
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Mark H. Norman
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Ella Magal
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James J. S. Treanor
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Jean-Claude Louis
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Abstract

The vanilloid receptor TRPV1 (transient receptor potential vanilloid 1) is a cation channel that serves as a polymodal detector of pain-producing stimuli such as capsaicin, protons (pH <5.7), and heat. TRPV1 antagonists block pain behaviors in rodent models of inflammatory, neuropathic, and cancer pain, suggesting their utility as analgesics. Here, we report that TRPV1 antagonists representing various chemotypes cause an increase in body temperature (hyperthermia), identifying a potential issue for their clinical development. Peripheral restriction of antagonists did not eliminate hyperthermia, suggesting that the site of action is predominantly outside of the blood–brain barrier. Antagonists that are ineffective against proton activation also caused hyperthermia, indicating that blocking capsaicin and heat activation of TRPV1 is sufficient to produce hyperthermia. All TRPV1 antagonists evaluated here caused hyperthermia, suggesting that TRPV1 is tonically activated in vivo and that TRPV1 antagonism and hyperthermia are not separable. TRPV1 antagonists caused hyperthermia in multiple species (rats, dogs, and monkeys), demonstrating that TRPV1 function in thermoregulation is conserved from rodents to primates. Together, these results indicate that tonic TRPV1 activation regulates body temperature.

  • antagonist
  • calcium channels
  • capsaicin
  • hyperthermia
  • pain
  • TRPV
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The Journal of Neuroscience: 27 (13)
Journal of Neuroscience
Vol. 27, Issue 13
28 Mar 2007
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The Vanilloid Receptor TRPV1 Is Tonically Activated In Vivo and Involved in Body Temperature Regulation
Narender R. Gavva, Anthony W. Bannon, Sekhar Surapaneni, David N. Hovland Jr, Sonya G. Lehto, Anu Gore, Todd Juan, Hong Deng, Bora Han, Lana Klionsky, Rongzhen Kuang, April Le, Rami Tamir, Jue Wang, Brad Youngblood, Dawn Zhu, Mark H. Norman, Ella Magal, James J. S. Treanor, Jean-Claude Louis
Journal of Neuroscience 28 March 2007, 27 (13) 3366-3374; DOI: 10.1523/JNEUROSCI.4833-06.2007

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The Vanilloid Receptor TRPV1 Is Tonically Activated In Vivo and Involved in Body Temperature Regulation
Narender R. Gavva, Anthony W. Bannon, Sekhar Surapaneni, David N. Hovland Jr, Sonya G. Lehto, Anu Gore, Todd Juan, Hong Deng, Bora Han, Lana Klionsky, Rongzhen Kuang, April Le, Rami Tamir, Jue Wang, Brad Youngblood, Dawn Zhu, Mark H. Norman, Ella Magal, James J. S. Treanor, Jean-Claude Louis
Journal of Neuroscience 28 March 2007, 27 (13) 3366-3374; DOI: 10.1523/JNEUROSCI.4833-06.2007
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