首页> 外文OA文献 >Differences in Calcium Clearance at Inner Hair Cell Active Zones May Underlie the Difference in Susceptibility to Noise-Induced Cochlea Synaptopathy of C57BL/6J and CBA/CaJ Mice
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Differences in Calcium Clearance at Inner Hair Cell Active Zones May Underlie the Difference in Susceptibility to Noise-Induced Cochlea Synaptopathy of C57BL/6J and CBA/CaJ Mice

机译:内毛细胞活性区钙清除差异可能使C57BL / 6J和CBA / CAJ小鼠噪声引起的噪声诱导的Cochlea突触病变的差异置于易感性

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摘要

Noise exposure of a short period at a moderate level can produce permanent cochlear synaptopathy without seeing lasting changes in audiometric threshold. However, due to the species differences in inner hair cell (IHC) calcium current that we have recently discovered, the susceptibility to noise exposure may vary, thereby impact outcomes of noise exposure. In this study, we investigate the consequences of noise exposure in the two commonly used animal models in hearing research, CBA/CaJ (CBA) and C57BL/6J (B6) mice, focusing on the functional changes of cochlear IHCs. In the CBA mice, moderate noise exposure resulted in a typical fully recovered audiometric threshold but a reduced wave I amplitude of auditory brainstem responses. In contrast, both auditory brainstem response threshold and wave I amplitude fully recovered in B6 mice at 2 weeks after noise exposure. Confocal microscopy observations found that ribbon synapses of IHCs recovered in B6 mice but not in CBA mice. To further characterize the molecular mechanism underlying these different phenotypes in synaptopathy, we compared the ratio of Bax/Bcl-2 with the expression of cytochrome-C and found increased activity in CBA mice after noise exposure. Under whole-cell patch clamped IHCs, we acquired two-photon calcium imaging around the active zone to evaluate the Ca2+ clearance rate and found that CBA mice have a slower calcium clearance rate. Our results indicated that excessive accumulation of calcium due to acoustic overexposure and slow clearance around the presynaptic ribbon might lead to disruption of calcium homeostasis, followed by mitochondrial dysfunction of IHCs that cause susceptibility of noise-induced cochlear synaptopathy in CBA mice.
机译:在适度水平的短时间内的噪音暴露可以产生永久性耳蜗突触病,而不看到听力阈值的持久变化。然而,由于我们最近发现的内部毛细胞(IHC)钙电流的物种差异,对噪声暴露的敏感性可能变化,从而影响噪声暴露的结果。在这项研究中,我们研究了听力研究,CBA / CAJ(CBA)和C57BL / 6J(B6)小鼠中两种常用的动物模型中噪声暴露的后果,重点是耳蜗IHC的功能变化。在CBA小鼠中,中等噪声曝光导致典型的完全恢复的听力阈值,但是听觉脑干响应的幅度幅度。相反,在噪声暴露后2周,在B6小鼠中,听觉脑干响应阈值和Wave幅度完全回收。共聚焦显微镜观察发现,在B6小鼠中恢复的IHC的带状突触,但不在CBA小鼠中。为了进一步表征突触疗法中这些不同表型的分子机制,我们将Bax / Bcl-2的比例与细胞色素-C的表达进行了比较,发现噪音暴露后CBA小鼠中的活性增加。在全细胞膜片钳位IHC下,我们在有源区围绕有源区获得了两种光子钙成像,以评估Ca2 +间隙率,发现CBA小鼠具有较慢的钙清除率。我们的结果表明,由于声过度曝光和突触丝带周围的慢性间隙,钙的过度积累可能导致钙稳态的破坏,其次是IHC的线粒体功能障碍,导致CBA小鼠中噪声诱导的耳蜗突触术敏感性。

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