神经病理性疼痛
背根神经节
钠通道阻滞剂
伤害
钠通道
药理学
伤害感受器
医学
麻醉
止痛药
感觉神经元
钠
化学
背
受体
内科学
解剖
有机化学
作者
Matteo Urru,Mirko Muzzi,Elisabetta Coppi,Giuseppe Ranieri,Daniela Buonvicino,Emidio Camaioni,Raffaele Coppini,Anna Maria Pugliese,Brian S. Tanaka,Mark Estacion,Stephen G. Waxman,Sulayman D. Dib‐Hajj,Alberto Chiarugi
出处
期刊:Pain
[Lippincott Williams & Wilkins]
日期:2019-12-09
卷期号:161 (4): 831-841
被引量:22
标识
DOI:10.1097/j.pain.0000000000001774
摘要
Abstract Selective targeting of sodium channel subtypes Na v 1.7, Na v 1.8, and Na v 1.9, preferentially expressed by peripheral nociceptors, represents a unique opportunity to develop analgesics devoid of central side effects. Several compounds that target Na v 1.7 and Na v 1.8 with different degrees of selectivity have been developed and are currently being tested in clinical trials for multiple pain indications. Among these chemicals, benzothiazole-like compounds emerged as potent sodium channel blockers. We evaluated the effects of dexpramipexole, a benzothiazole-bearing drug with pleiotypic neuroactive properties and a good safety profile in humans, on sodium conductances of dorsal root ganglia neurons, as well as in multiple nociceptive and neuropathic pain models. Dexpramipexole blocks TTX-resistant sodium conductances in cultured rat dorsal root ganglion neurons with an IC 50 of 294.4 nM, suggesting selectivity towards Na v 1.8. In keeping with this, dexpramipexole does not affect sodium currents in dorsal root ganglion neurons from Na v 1.8 null mice and acquires binding pose predicted to overlap that of the Na v 1.8 channel-selective blocker A-8034637. The drug provides analgesia when parenterally, orally, or topically applied in inflammatory and visceral mouse pain models, as well as in mice affected by neuropathic pain induced by oxaliplatin, nerve constriction, or diabetes. Pain reduction in mice occurs at doses consistent with those adopted in clinical trials. The present findings confirm the relevance of selective targeting of peripheral Na v 1.8 channels to pain therapy. In light of the excellent tolerability of dexpramipexole in humans, our results support its translational potential for treatment of pain.
科研通智能强力驱动
Strongly Powered by AbleSci AI