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Published on: October 6, 2022
A peripheral CB2 cannabinoid receptor mechanism suppresses chemotherapy-induced peripheral neuropathy: evidence from
Xiaoyan Lin1, Zhili Xu1, Lawrence Carey1,2
1Psychological and Brain Sciences, Indiana University, Bloomington, IN, United States.
Abstract:
CB2 cannabinoid receptors (CB2) are a promising therapeutic target that lacks unwanted side effects of CB1 activation. However, the cell types expressing CB2 that mediate these effects remain poorly understood. We used transgenic mice with CB2 promoter-driven expression of enhanced green fluorescent protein (EGFP) to study cell types that express CB2 and suppress neuropathic nociception in a mouse model of chemotherapy-induced peripheral neuropathy. Structurally distinct CB2 agonists (AM1710 and LY2828360) suppressed paclitaxel-induced mechanical and cold allodynia in CB2EGFP reporter mice with established neuropathy. Antiallodynic effects of AM1710 were blocked by SR144528, a CB2 antagonist with limited CNS penetration. Intraplantar AM1710 administration suppressed paclitaxel-induced neuropathic nociception in CB2EGFP but not CB2 knockout mice, consistent with a local site of antiallodynic action. mRNA expression levels of the anti-inflammatory cytokine interleukin-10 were elevated in the lumbar spinal cord after intraplantar AM1710 injection along with the proinflammatory cytokine tumor necrosis factor alpha and chemokine monocyte chemoattractant protein-1. CB2EGFP, but not wildtype mice, exhibited anti-GFP immunoreactivity in the spleen. However, the anti-GFP signal was below the threshold for detection in the spinal cord and brain of either vehicle-treated or paclitaxel-treated CB2EGFP mice. EGFP fluorescence was coexpressed with CB2 immunolabeling in stratified patterns among epidermal keratinocytes. EGFP fluorescence was also expressed in dendritic cells in the dermis, Langerhans cells in the epidermis, and Merkel cells. Quantification of the EGFP signal revealed that Langerhans cells were dynamically increased in the epidermis after paclitaxel treatment. Our studies implicate CB2 expressed in previously unrecognized populations of skin cells as a potential target for suppressing chemotherapy-induced neuropathic nociception.
Insights
CB2 cannabinoid receptors in skin cells, including Langerhans cells, can suppress chemotherapy-induced pain. Targeting these CB2 receptors offers a potential therapeutic strategy for neuropathic nociception.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- CB2 cannabinoid receptors are a promising therapeutic target for pain relief, distinct from CB1 receptors.
- The specific cell types expressing CB2 receptors that mediate therapeutic effects are not well understood.
- Chemotherapy-induced peripheral neuropathy causes significant neuropathic nociception, impacting patient quality of life.
Purpose of the Study:
- To identify the cell types expressing CB2 receptors involved in suppressing neuropathic nociception.
- To investigate the role of skin-expressed CB2 receptors in chemotherapy-induced peripheral neuropathy.
- To explore CB2 receptor agonists as potential therapeutics for neuropathic pain.
Main Methods:
- Utilized CB2 promoter-driven enhanced green fluorescent protein (EGFP) reporter mice to track CB2-expressing cells.
- Administered CB2 agonists (AM1710, LY2828360) and a CB2 antagonist (SR144528) in a mouse model of paclitaxel-induced neuropathy.
- Analyzed EGFP expression, CB2 immunolabeling, and cytokine/chemokine levels in skin, spinal cord, and brain tissue.
Main Results:
- CB2 agonists suppressed mechanical and cold allodynia in reporter mice, with effects blocked by a CB2 antagonist.
- CB2 receptor activation in the skin, specifically in keratinocytes, dendritic cells, Langerhans cells, and Merkel cells, was implicated.
- Langerhans cells in the epidermis showed increased numbers after paclitaxel treatment.
- Elevated interleukin-10 and changes in tumor necrosis factor alpha and monocyte chemoattractant protein-1 were observed in the spinal cord.
Conclusions:
- CB2 receptors expressed in previously unrecognized skin cell populations, particularly Langerhans cells, play a role in suppressing chemotherapy-induced neuropathic nociception.
- Targeting peripheral CB2 receptors in skin cells represents a potential strategy for managing chemotherapy-induced pain.
- Further research into skin-based CB2 receptor modulation could lead to novel analgesic therapies.
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