Nociceptive-specific activation of ERK in spinal neurons contributes to pain hypersensitivity
- 1 December 1999
- journal article
- research article
- Published by Springer Nature in Nature Neuroscience
- Vol. 2 (12) , 1114-1119
- https://doi.org/10.1038/16040
Abstract
We investigated the involvement of extracellular signal-regulated protein kinases (ERK) within spinal neurons in producing pain hypersensitivity. Within a minute of an intense noxious peripheral or C-fiber electrical stimulus, many phosphoERK-positive neurons were observed, most predominantly in lamina I and IIo of the ipsilateral dorsal horn. This staining was intensity and NMDA receptor dependent. Low-intensity stimuli or A-fiber input had no effect. Inhibition of ERK phosphorylation by a MEK inhibitor reduced the second phase of formalin-induced pain behavior, a measure of spinal neuron sensitization. ERK signaling within the spinal cord is therefore involved in generating pain hypersensitivity. Because of its rapid activation, this effect probably involves regulation of neuronal excitability without changes in transcription.Keywords
This publication has 51 references indexed in Scilit:
- Making New ConnectionsPublished by Elsevier ,1999
- Light and circadian rhythmicity regulate MAP kinase activation in the suprachiasmatic nucleiNature Neuroscience, 1998
- The MAPK cascade is required for mammalian associative learningNature Neuroscience, 1998
- Cross Talk between ERK and PKA Is Required for Ca2+ Stimulation of CREB-Dependent Transcription and ERK Nuclear TranslocationNeuron, 1998
- A Requirement for the Mitogen-activated Protein Kinase Cascade in Hippocampal Long Term PotentiationJournal of Biological Chemistry, 1997
- Activation of p42 Mitogen-activated Protein Kinase in Hippocampal Long Term PotentiationJournal of Biological Chemistry, 1996
- The MAPK signaling cascadeThe FASEB Journal, 1995
- Parallel signal processing among mammalian MAPKsTrends in Biochemical Sciences, 1995
- Membrane depolarization and calcium influx stimulate MEK and MAP kinase via activation of RasNeuron, 1994
- Evidence for a central component of post-injury pain hypersensitivityNature, 1983