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Potential Molecular Targets for Treating Neuropathic Orofacial Pain Based on Current Findings in Animal Models
Yukinori Nagakura1, Shogo Nagaoka2, Takahiro Kurose2
1School of Pharmacy at Fukuoka, International University of Health and Welfare, 137-1 Enokizu, Okawa-city, Fukuoka 831-8501, Japan.
Abstract:
This review highlights potential molecular targets for treating neuropathic orofacial pain based on current findings in animal models. Preclinical research is currently elucidating the pathophysiology of the disease and identifying the molecular targets for better therapies using animal models that mimic this category of orofacial pain, especially post-traumatic trigeminal neuropathic pain (PTNP) and primary trigeminal neuralgia (PTN). Animal models of PTNP and PTN simulate their etiologies, that is, trauma to the trigeminal nerve branch and compression of the trigeminal root entry zone, respectively. Investigations in these animal models have suggested that biological processes, including inflammation, enhanced neuropeptide-mediated pain signal transmission, axonal ectopic discharges, and enhancement of interactions between neurons and glial cells in the trigeminal pathway, are underlying orofacial pain phenotypes. The molecules associated with biological processes, whose expressions are substantially altered following trigeminal nerve damage or compression of the trigeminal nerve root, are potentially involved in the generation and/or exacerbation of neuropathic orofacial pain and can be potential molecular targets for the discovery of better therapies. Application of therapeutic candidates, which act on the molecular targets and modulate biological processes, attenuates pain-associated behaviors in animal models. Such therapeutic candidates including calcitonin gene-related peptide receptor antagonists that have a reasonable mechanism for ameliorating neuropathic orofacial pain and meet the requirements for safe administration to humans seem worth to be evaluated in clinical trials. Such prospective translation of the efficacy of therapeutic candidates from animal models to human patients would help develop better therapies for neuropathic orofacial pain.
Insights
Identifying molecular targets in animal models is key to developing new treatments for neuropathic orofacial pain. Therapies targeting these molecules, like calcitonin gene-related peptide receptor antagonists, show promise for clinical trials.
Area of Science:
- Neuroscience
- Pharmacology
- Pain Research
Background:
- Neuropathic orofacial pain, including post-traumatic trigeminal neuropathic pain (PTNP) and primary trigeminal neuralgia (PTN), significantly impacts quality of life.
- Current understanding of orofacial pain pathophysiology relies heavily on preclinical animal models that mimic disease etiology.
Purpose of the Study:
- To review potential molecular targets for neuropathic orofacial pain based on animal model findings.
- To identify therapeutic strategies for developing improved orofacial pain treatments.
Main Methods:
- Analysis of preclinical research on animal models of PTNP and PTN.
- Investigation of biological processes and molecular alterations in the trigeminal pathway following nerve injury or compression.
Main Results:
- Key biological processes implicated include inflammation, neuropeptide signaling, axonal dysfunction, and neuroglial interactions.
- Altered molecular expressions in the trigeminal pathway suggest potential therapeutic targets.
- Therapeutic candidates targeting these molecules, such as calcitonin gene-related peptide receptor antagonists, reduce pain behaviors in animal models.
Conclusions:
- Molecular targets identified in animal models offer promising avenues for novel neuropathic orofacial pain therapies.
- Therapeutic candidates demonstrating efficacy in preclinical studies warrant clinical evaluation for human application.
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