首页> 美国卫生研究院文献>The Korean Journal of Physiology Pharmacology : Official Journal of the Korean Physiological Society and the Korean Society of Pharmacology >Reactive oxygen species increase neuronal excitability via activation of nonspecific cation channel in rat medullary dorsal horn neurons
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Reactive oxygen species increase neuronal excitability via activation of nonspecific cation channel in rat medullary dorsal horn neurons

机译:活性氧通过激活大鼠背角脊髓神经元中的非特异性阳离子通道来增加神经元兴奋性

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摘要

The caudal subnucleus of the spinal trigeminal nucleus (medullary dorsal horn; MDH) receives direct inputs from small diameter primary afferent fibers that predominantly transmit nociceptive information in the orofacial region. Recent studies indicate that reactive oxygen species (ROS) is involved in persistent pain, primarily through spinal mechanisms. In this study, we aimed to investigate the role of xanthine/xanthine oxidase (X/XO) system, a known generator of superoxide anion (O2·−), on membrane excitability in the rat MDH neurons. For this, we used patch clamp recording and confocal imaging. An application of X/XO (300 µM/30 mU) induced membrane depolarization and inward currents. When slices were pretreated with ROS scavengers, such as phenyl N-tert-butylnitrone (PBN), superoxide dismutase (SOD), and catalase, X/XO-induced responses decreased. Fluorescence intensity in the DCF-DA and DHE-loaded MDH cells increased on the application of X/XO. An anion channel blocker, 4,4-diisothiocyanatostilbene-2,2-disulfonic acid (DIDS), significantly decreased X/XO-induced depolarization. X/XO elicited an inward current associated with a linear current-voltage relationship that reversed near −40 mV. X/XO-induced depolarization reduced in the presence of La3+, a nonselective cation channel (NSCC) blocker, and by lowering the external sodium concentration, indicating that membrane depolarization and inward current are induced by influx of Na+ ions. In conclusion, X/XO-induced ROS modulate the membrane excitability of MDH neurons, which was related to the activation of NSCC.
机译:脊柱三叉神经核的尾部亚核(髓背角; MDH)从小直径的初级传入纤维接收直接输入,这些纤维主要在口面区域传递伤害感受信息。最近的研究表明,活性氧(ROS)主要通过脊柱机制参与持续性疼痛。在这项研究中,我们旨在研究黄嘌呤/黄嘌呤氧化酶(X / XO)系统(一种已知的超氧阴离子(O2 ·-)生成器)对大鼠MDH神经元膜兴奋性的作用。为此,我们使用了膜片钳记录和共聚焦成像。 X / XO(300 µM / 30 mU)的应用引起膜去极化和内向电流。当切片用ROS清除剂(如苯基N-叔丁基硝酮(PBN),超氧化物歧化酶(SOD)和过氧化氢酶)预处理时,X / XO诱导的响应降低。 X / XO的应用增加了DCF-DA和DHE加载的MDH细胞的荧光强度。阴离子通道阻滞剂4,4-二异硫氰基1,2,2-二磺酸(DIDS)可显着降低X / XO引起的去极化。 X / XO引起与线性电流-电压关系相关的内向电流,该关系在-40 mV附近反转。在非选择性阳离子通道(NSCC)阻断剂La 3 + 的存在下,X / XO引起的去极化作用降低,并且通过降低外部钠浓度,表明膜内的去极化作用和内向电流是由涌入引起的Na + 离子的数量总之,X / XO诱导的ROS调节了MDH神经元的膜兴奋性,这与NSCC的激活有关。

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