Duan Mingli, Jia Yurui, Huo Lifang, Gao Yiting, Wang Jia, Zhang Wei, Jia Zhanfeng
Department of Pharmacology, Hebei Medical University, Shijiazhuang 050017, China.
Center of Innovative Drug Research and Evaluation, Institute of Medical Science and Health, Hebei Medical University, Shijiazhuang 050017, China.
Acta Pharm Sin B. 2023 Aug;13(8):3365-3381. doi: 10.1016/j.apsb.2023.05.010. Epub 2023 May 15.
Vincristine, a widely used chemotherapeutic agent for treating different cancer, often induces severe peripheral neuropathic pain. A common symptom of vincristine-induced peripheral neuropathic pain is mechanical allodynia and hyperalgesia. However, mechanisms underlying vincristine-induced mechanical allodynia and hyperalgesia are not well understood. In the present study, we show with behavioral assessment in rats that vincristine induces mechanical allodynia and hyperalgesia in a PIEZO2 channel-dependent manner since gene knockdown or pharmacological inhibition of PIEZO2 channels alleviates vincristine-induced mechanical hypersensitivity. Electrophysiological results show that vincristine potentiates PIEZO2 rapidly adapting (RA) mechanically-activated (MA) currents in rat dorsal root ganglion (DRG) neurons. We have found that vincristine-induced potentiation of PIEZO2 MA currents is due to the enhancement of static plasma membrane tension (SPMT) of these cells following vincristine treatment. Reducing SPMT of DRG neurons by cytochalasin D (CD), a disruptor of the actin filament, abolishes vincristine-induced potentiation of PIEZO2 MA currents, and suppresses vincristine-induced mechanical hypersensitivity in rats. Collectively, enhancing SPMT and subsequently potentiating PIEZO2 MA currents in primary afferent neurons may be an underlying mechanism responsible for vincristine-induced mechanical allodynia and hyperalgesia in rats. Targeting to inhibit PIEZO2 channels may be an effective analgesic method to attenuate vincristine-induced mechanical hypersensitivity.
长春新碱是一种广泛用于治疗多种癌症的化疗药物,常引发严重的外周神经性疼痛。长春新碱诱导的外周神经性疼痛的常见症状是机械性异常性疼痛和痛觉过敏。然而,长春新碱诱导机械性异常性疼痛和痛觉过敏的机制尚不清楚。在本研究中,我们通过对大鼠的行为评估表明,长春新碱以依赖于PIEZO2通道的方式诱导机械性异常性疼痛和痛觉过敏,因为PIEZO2通道的基因敲低或药理学抑制可减轻长春新碱诱导的机械性超敏反应。电生理结果表明,长春新碱增强了大鼠背根神经节(DRG)神经元中PIEZO2快速适应性(RA)机械激活(MA)电流。我们发现,长春新碱诱导的PIEZO2 MA电流增强是由于长春新碱处理后这些细胞的静态质膜张力(SPMT)增强。用细胞松弛素D(CD)(一种肌动蛋白丝破坏剂)降低DRG神经元的SPMT,可消除长春新碱诱导的PIEZO2 MA电流增强,并抑制长春新碱诱导的大鼠机械性超敏反应。总的来说,增强初级传入神经元的SPMT并随后增强PIEZO2 MA电流可能是长春新碱诱导大鼠机械性异常性疼痛和痛觉过敏的潜在机制。靶向抑制PIEZO2通道可能是减轻长春新碱诱导的机械性超敏反应的有效镇痛方法。