Nav1.7 Modulator Bearing a 3-Hydroxyindole Backbone Holds the Potential to Reverse Neuropathic Pain

神经病理性疼痛 钠通道 导航1 慢性疼痛 神经科学 人口 膜片钳 背根神经节 变构调节 SNi公司 神经损伤 医学 电生理学 化学 药理学 生物物理学 麻醉 内科学 生物 受体 生物化学 解剖 酸水解 有机化学 环境卫生 水解
作者
Yuwei Wang,Jirong Shu,Haoyi Yang,Kemiao Hong,Xiangji Yang,Wei Guo,Jie Fang,Fuyi Li,Tao Liu,Z.S. Shan,Taoda Shi,Sanjun Cai,Jian Zhang
出处
期刊:ACS Chemical Neuroscience [American Chemical Society]
卷期号:15 (6): 1063-1073
标识
DOI:10.1021/acschemneuro.3c00353
摘要

Chronic pain is a growing global health problem affecting at least 10% of the world's population. However, current chronic pain treatments are inadequate. Voltage-gated sodium channels (Navs) play a pivotal role in regulating neuronal excitability and pain signal transmission and thus are main targets for nonopioid painkiller development, especially those preferentially expressed in dorsal root ganglial (DRG) neurons, such as Nav1.6, Nav1.7, and Nav1.8. In this study, we screened in virtual hits from dihydrobenzofuran and 3-hydroxyoxindole hybrid molecules against Navs via a veratridine (VTD)-based calcium imaging method. The results showed that one of the molecules, 3g, could inhibit VTD-induced neuronal activity significantly. Voltage clamp recordings demonstrated that 3g inhibited the total Na+ currents of DRG neurons in a concentration-dependent manner. Biophysical analysis revealed that 3g slowed the activation, meanwhile enhancing the inactivation of the Navs. Additionally, 3g use-dependently blocked Na+ currents. By combining with selective Nav inhibitors and a heterozygous expression system, we demonstrated that 3g preferentially inhibited the TTX-S Na+ currents, specifically the Nav1.7 current, other than the TTX-R Na+ currents. Molecular docking experiments implicated that 3g binds to a known allosteric site at the voltage-sensing domain IV(VSDIV) of Nav1.7. Finally, intrathecal injection of 3g significantly relieved mechanical pain behavior in the spared nerve injury (SNI) rat model, suggesting that 3g is a promising candidate for treating chronic pain.
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