Extracellular ATP and cAMP signaling promote Piezo2‐dependent mechanical allodynia after trigeminal nerve compression injury

三叉神经节 嘌呤能受体 环磷酸腺苷 神经病理性疼痛 机械转化 阿皮拉酶 神经损伤 医学 刺激 细胞生物学 痛觉超敏 环磷酸鸟苷 腺苷 致电离效应 嘌呤能信号 背根神经节 舌神经 受体 神经科学 内科学 腺苷受体 药理学 麻醉 谷氨酸受体 解剖 伤害 生物 病理 痛觉过敏 感觉系统 兴奋剂 一氧化氮 舌头
作者
Zhaoke Luo,Xinyue Liao,Lili Luo,Qitong Fan,Xiaofen Zhang,Guo Yuefeng,Feng Wang,Zu‐Cheng Ye,Daoshu Luo
出处
期刊:Journal of Neurochemistry [Wiley]
卷期号:160 (3): 376-391 被引量:21
标识
DOI:10.1111/jnc.15537
摘要

Trigeminal neuralgia (TN) is a type of severe paroxysmal neuropathic pain commonly triggered by mild mechanical stimulation in the orofacial area. Piezo2, a mechanically gated ion channel that mediates tactile allodynia in neuropathic pain, can be potentiated by a cyclic adenosine monophosphate (cAMP)-dependent signaling pathway that involves the exchange protein directly activated by cAMP 1 (Epac1). To study whether Piezo2-mediated mechanotransduction contributes to peripheral sensitization in a rat model of TN after trigeminal nerve compression injury, the expression of Piezo2 and activation of cAMP signal-related molecules in the trigeminal ganglion (TG) were detected. Changes in purinergic P2 receptors in the TG were also studied by RNA-seq. The expression of Piezo2, cAMP, and Epac1 in the TG of the TN animals increased after chronic compression of the trigeminal nerve root (CCT) for 21 days, but Piezo2 knockdown by shRNA in the TG attenuated orofacial mechanical allodynia. Purinergic P2 receptors P2X4, P2X7, P2Y1, and P2Y2 were significantly up-regulated after CCT injury. In vitro, Piezo2 expression in TG neurons was significantly increased by exogenous adenosine 5'-triphosphate (ATP) and Ca2+ ionophore ionomycin. ATP pre-treated TG neurons displayed elevated [Ca2+ ]i and faster increase in responding to blockage of Na+ /Ca2+ exchanger by KB-R7943. Furthermore, mechanical stimulation of cultured TG neurons led to sustained elevation in [Ca2+ ]i in ATP pre-treated TG neurons, which is much less in naïve TG neurons, or is significantly reduced by Piezo2 inhibitor GsMTx4. These results indicated a pivotal role of Piezo2 in peripheral mechanical allodynia in the rat CCT model. Extracellular ATP, Ca2+ influx, and the cAMP-to-Epac1 signaling pathway synergistically contribute to the pathogenesis and the persistence of mechanical allodynia.
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