Involvement of BK Channels and Ryanodine Receptors in Salicylate-induced Tinnitus.

IF 4.3 2区 医学 Q1 NEUROSCIENCES Molecular Neurobiology Pub Date : 2025-04-01 Epub Date: 2024-10-14 DOI:10.1007/s12035-024-04533-6
Wenying Shi, Qi Zhao, Hongwei Gao, Chao Yang, Zhiyong Tan, Na Li, Feng Jiang, Hongjie Wang, Yonghua Ji, You Zhou
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Abstract

Neural hyperexcitability of the central auditory system is a key pathological characteristic of tinnitus, but its underlying molecular mechanisms remain elusive. The large-conductance Ca2+-activated K+ channel (BK) plays a crucial role in down- or upregulating neuronal activity. This study aims to investigate the role of BK channels in mediating tinnitus-associated neural hyperexcitability and elucidate the mechanisms behind it. Immunofluorescent staining revealed extensive expression of the BK channels on neurons within the central auditory system of rats. After long-term systemic administration of salicylate, a stable tinnitus inducer, we observed a significant change in the expression levels of BKα and β4 subunits in the rat central auditory system. In addition, salicylate was found to enhance the outward potassium currents mediated by the BK channel when exogenously expressed in HEK293 cells. Interestingly, this effect could be blocked by ryanodine, a potent inhibitor of ryanodine receptors (RyRs). Molecular docking identified Gln4020 within the central domain of RyR as a key residue in RyR-salicylate interactions. The results indicated that salicylate might directly activate RyRs leading to Ca2+ release from endoplasmic reticulum, and increased BK currents subsequently. Systemic treatment with paxilline, a potent blocker of BK channel, selectively reversed the increased P4/P1 amplitude ratios in the frequency region of tinnitus perception induced by single-dose salicylate administration. These results suggest that BK channels and ryanodine receptors may play a selective role in salicylate-induced tinnitus.

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BK 通道和瑞诺丁受体参与水杨酸盐诱发的耳鸣
中枢听觉系统的神经过度兴奋是耳鸣的一个主要病理特征,但其潜在的分子机制仍然难以捉摸。大电导 Ca2+ 激活的 K+ 通道(BK)在下调或上调神经元活动中起着至关重要的作用。本研究旨在探讨 BK 通道在介导耳鸣相关神经过度兴奋中的作用,并阐明其背后的机制。免疫荧光染色显示,BK 通道在大鼠中枢听觉系统的神经元上广泛表达。在长期全身给药水杨酸盐(一种稳定的耳鸣诱导剂)后,我们观察到大鼠中枢听觉系统中 BKα 和 β4 亚基的表达水平发生了显著变化。此外,我们还发现,在 HEK293 细胞中外源表达水杨酸时,BK 通道介导的外向钾电流会增强。有趣的是,这种效应可以被雷诺丁(一种雷诺丁受体(RyRs)的强效抑制剂)阻断。分子对接发现 RyR 中心结构域中的 Gln4020 是 RyR 与水杨酸盐相互作用的关键残基。结果表明,水杨酸盐可能直接激活 RyRs,导致 Ca2+ 从内质网释放,并随之增加 BK 电流。使用 BK 通道的强效阻断剂帕西林(paxilline)进行全身治疗,可选择性地逆转单剂量水杨酸盐引起的耳鸣感知频率区 P4/P1 振幅比的增加。这些结果表明,BK 通道和雷诺丁受体可能在水杨酸盐诱发的耳鸣中起选择性作用。
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来源期刊
Molecular Neurobiology
Molecular Neurobiology 医学-神经科学
CiteScore
9.00
自引率
2.00%
发文量
480
审稿时长
1 months
期刊介绍: Molecular Neurobiology is an exciting journal for neuroscientists needing to stay in close touch with progress at the forefront of molecular brain research today. It is an especially important periodical for graduate students and "postdocs," specifically designed to synthesize and critically assess research trends for all neuroscientists hoping to stay active at the cutting edge of this dramatically developing area. This journal has proven to be crucial in departmental libraries, serving as essential reading for every committed neuroscientist who is striving to keep abreast of all rapid developments in a forefront field. Most recent significant advances in experimental and clinical neuroscience have been occurring at the molecular level. Until now, there has been no journal devoted to looking closely at this fragmented literature in a critical, coherent fashion. Each submission is thoroughly analyzed by scientists and clinicians internationally renowned for their special competence in the areas treated.
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