Contribution of central neuroplasticity to pathological pain: review of clinical and experimental evidence
- 1 March 1993
- journal article
- review article
- Published by Wolters Kluwer Health in Pain
- Vol. 52 (3), 259-285
- https://doi.org/10.1016/0304-3959(93)90161-h
Abstract
Peripheral tissue damage or nerve injury often leads to pathological pain processes, such as spontaneous pain, hyperalgesia and allodynia, that persist for years or decades after all possible tissue healing has occurred. Although peripheral neural mechanisms, such as nociceptor sensitization and neuroma formation, contribute to these pathological pain processes, recent evidence indicates that changes in central neural function may also play a significant role. In this review, we examine the clinical and experimental evidence which points to a contribution of central neural plasticity to the development of pathological pain. We also assess the physiological, biochemical, cellular and molecular mechanisms that underlie plasticity induced in the central nervous system (CNS) in response to noxious peripheral stimulation. Finally, we examine theories which have been proposed to explain how injury or noxious stimulation lead to alterations in CNS function which influence subsequent pain experience.Keywords
This publication has 271 references indexed in Scilit:
- Contribution of protein kinase C to central sensitization and persistent pain following tissue injuryNeuroscience Letters, 1992
- Stereospecific effects of a nonpeptidic NK1 selective antagonist, CP-96,345: Antinociception in the absence of motor dysfunctionLife Sciences, 1991
- Sequential expression of JUN B, JUN D and FOS B proteins in rat spinal neurons: Cascade of transcriptional operations during nociceptionNeuroscience Letters, 1991
- Release of substance P from the spinal dorsal horn is enhanced in polyarthritic ratsNeuroscience Letters, 1987
- Prodynorphin gene expression is enhanced in the spinal cord of chronic arthritic ratsNeuroscience Letters, 1987
- Nociceptive behavior after intrathecal injections of substance P, neurokinin A and calcitonin gene-related peptide in miceNeuroscience Letters, 1986
- Morphine, but not atropine, blocks nociceptor-driven activity in rat dorsal hippocampal neuronesNeuroscience Letters, 1986
- Substance P and calcitonin gene-related peptide synergistically modulate the gain of the nociceptive flexor withdrawal reflex in the ratNeuroscience Letters, 1986
- Morphine-sensitive and morphine-insensitive actions of C-fibre input on the rat spinal cordNeuroscience Letters, 1986
- A PROPOSED MECHANISM OF EMOTIONArchives of Neurology & Psychiatry, 1937