Acid potentiation of the capsaicin receptor determined by a key extracellular site
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- 20 June 2000
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 97 (14), 8134-8139
- https://doi.org/10.1073/pnas.100129497
Abstract
The capsaicin (vanilloid) receptor, VR1, is a sensory neuron-specific ion channel that serves as a polymodal detector of pain-producing chemical and physical stimuli. The response of VR1 to capsaicin or noxious heat is dynamically potentiated by extracellular protons within a pH range encountered during tissue acidosis, such as that associated with arthritis, infarction, tumor growth, and other forms of injury. A molecular determinant for this important physiological activity was localized to an extracellular Glu residue (E600) in the region linking the fifth transmembrane domain with the putative pore-forming region of the channel. We suggest that this residue serves as a key regulatory site of the receptor by setting sensitivity to other noxious stimuli in response to changes in extracellular proton concentration. We also demonstrate that protons, vanilloids, and heat promote channel opening through distinct pathways, because mutations at a second site (E648) selectively abrogate proton-evoked channel activation without diminishing responses to other noxious stimuli. Our findings provide molecular evidence for stimulus-specific steps in VR1 activation and offer strategies for the development of novel analgesic agents.Keywords
This publication has 43 references indexed in Scilit:
- Molecular basis of proton block of L-type Ca2+ channels.The Journal of general physiology, 1996
- Nonselective and G βγ -Insensitive weaver K + ChannelsScience, 1996
- Functional Analysis of the weaver Mutant GIRK2 K+ Channel and Rescue of weaver Granule CellsNeuron, 1996
- Functional Effects of the Mouse weaver Mutation on G Protein–Gated Inwardly Rectifying K+ ChannelsNeuron, 1996
- A potassium channel mutation in weaver mice implicates membrane excitability in granule cell differentiationNature Genetics, 1995
- A transmembrane domain of the putative channel subunit MEC-4 influences mechanotransduction and neurodegeneration in C. elegansNature, 1994
- Effect of protons on the inward current evoked by capsaicin in isolated dorsal root ganglion cellsPain, 1993
- The mec-4 gene is a member of a family of Caenorhabditis elegans genes that can mutate to induce neuronal degenerationNature, 1991
- [6] Efficient site-directed mutagenesis using uracil-containing DNAMethods in Enzymology, 1991
- Carboxyl–carboxylate interactions in proteinsNature, 1982