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Assessment of Morphine-induced Hyperalgesia and Analgesic Tolerance in Mice Using Thermal and Mechanical Nociceptive Modalities
Published on: July 29, 2014
Differential Spinal and Supraspinal Activation of Glia in a Rat Model of Morphine Tolerance
Viljami Jokinen1, Yulia Sidorova2, Hanna Viisanen1
1Department of Pharmacology, Faculty of Medicine, Haartmaninkatu 8 (Biomedicum), 00014 University of Helsinki, Helsinki, Finland.
Abstract:
Development of tolerance is a well known pharmacological characteristic of opioids and a major clinical problem. In addition to the known neuronal mechanisms of opioid tolerance, activation of glia has emerged as a potentially significant new mechanism. We studied activation of microglia and astrocytes in morphine tolerance and opioid-induced hyperalgesia in rats using immunohistochemistry, flow cytometry and RNA sequencing in spinal- and supraspinal regions. Chronic morphine treatment that induced tolerance and hyperalgesia also increased immunoreactivity of spinal microglia in the dorsal and ventral horns. Flow cytometry demonstrated that morphine treatment increased the proportion of M2-polarized spinal microglia, but failed to impact the number or the proportion of M1-polarized microglia. In the transcriptome of microglial cells isolated from the spinal cord (SC), morphine treatment increased transcripts related to cell activation and defense response. In the studied brain regions, no activation of microglia or astrocytes was detected by immunohistochemistry, except for a decrease in the number of microglial cells in the substantia nigra. In flow cytometry, morphine caused a decrease in the number of microglial cells in the medulla, but otherwise no change was detected for the count or the proportion of M1- and M2-polarized microglia in the medulla or sensory cortex. No evidence for the activation of glia in the brain was seen. Our results suggest that glial activation associated with opioid tolerance and opioid-induced hyperalgesia occurs mainly at the spinal level. The transcriptome data suggest that the microglial activation pattern after chronic morphine treatment has similarities with that of neuropathic pain.
Insights
Opioid tolerance and hyperalgesia involve glial activation, primarily in the spinal cord. Chronic morphine increased M2-polarized microglia and altered gene expression in spinal cord cells, suggesting a link to neuropathic pain mechanisms.
Area of Science:
- Neuroscience
- Pharmacology
- Immunology
Background:
- Opioid tolerance and opioid-induced hyperalgesia are significant clinical challenges.
- Neuronal mechanisms are well-established, but glial cell involvement is an emerging area of research.
Purpose of the Study:
- To investigate the role of microglia and astrocyte activation in morphine tolerance and opioid-induced hyperalgesia in rats.
- To determine the location and characteristics of glial activation in response to chronic morphine treatment.
Main Methods:
- Immunohistochemistry, flow cytometry, and RNA sequencing were employed.
- Analysis was conducted on spinal cord and supraspinal brain regions.
- Rats were treated with chronic morphine to induce tolerance and hyperalgesia.
Main Results:
- Chronic morphine increased spinal microglia immunoreactivity and the proportion of M2-polarized microglia.
- RNA sequencing revealed increased transcripts related to cell activation and defense response in spinal microglia.
- No significant glial activation was observed in the studied brain regions, with some exceptions like decreased microglia in the substantia nigra.
Conclusions:
- Glial activation, particularly of microglia, is predominantly a spinal phenomenon in the context of opioid tolerance and hyperalgesia.
- The observed microglial activation pattern shares similarities with mechanisms implicated in neuropathic pain.
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