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Local mechanisms for loud sound-enhanced aminoglycoside entry into outer hair cells

机译:大声增强氨基糖苷进入外毛细胞的局部机制

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摘要

Loud sound exposure exacerbates aminoglycoside ototoxicity, increasing the risk of permanent hearing loss and degrading the quality of life in affected individuals. We previously reported that loud sound exposure induces temporary threshold shifts (TTS) and enhances uptake of aminoglycosides, like gentamicin, by cochlear outer hair cells (OHCs). Here, we explore mechanisms by which loud sound exposure and TTS could increase aminoglycoside uptake by OHCs that may underlie this form of ototoxic synergy. Mice were exposed to loud sound levels to induce TTS, and received fluorescently-tagged gentamicin (GTTR) for 30 min prior to fixation. The degree of TTS was assessed by comparing auditory brainstem responses (ABRs) before and after loud sound exposure. The number of tip links, which gate the GTTR-permeant mechanoelectrical transducer (MET) channels, was determined in OHC bundles, with or without exposure to loud sound, using scanning electron microscopy. We found wide-band noise (WBN) levels that induce TTS also enhance OHC uptake of GTTR compared to OHCs in control cochleae. In cochlear regions with TTS, the increase in OHC uptake of GTTR was significantly greater than in adjacent pillar cells. In control mice, we identified stereociliary tip links at ~50% of potential positions in OHC bundles. However, the number of OHC tip links was significantly reduced in mice that received WBN at levels capable of inducing TTS. These data suggest that GTTR uptake by OHCs during TTS occurs by increased permeation of surviving, mechanically-gated MET channels, and/or non-MET aminoglycoside-permeant channels activated following loud sound exposure. Loss of tip links would hyperpolarize hair cells and potentially increase drug uptake via aminoglycoside-permeant channels expressed by hair cells. The effect of TTS on aminoglycoside-permeant channel kinetics will shed new light on the mechanisms of loud sound-enhanced aminoglycoside uptake, and consequently on ototoxic synergy.
机译:大量的声音暴露会加剧氨基糖苷的耳毒性,增加永久性听力损失的风险,并降低受影响个体的生活质量。我们以前曾报道过,大声的声音会引起耳蜗外毛细胞(OHC)的暂时性阈值漂移(TTS),并增强氨基糖苷类(如庆大霉素)的吸收。在这里,我们探讨了声音暴露和TTS可能增加OHC吸收氨基糖苷的机制,这些机制可能是这种耳毒性协同作用的基础。将小鼠暴露于高声级以诱导TTS,并在固定前接受荧光标记的庆大霉素(GTTR)30分钟。通过比较大声暴露前后的听觉脑干反应(ABR)来评估TTS的程度。使用扫描电子显微镜,确定在OHC束中(无论是否暴露于大声声中)门控GTTR渗透机电换能器(MET)通道的尖端链的数量。我们发现,与对照耳蜗中的OHC相比,诱导TTS的宽带噪声(WBN)水平还提高了GTTR对OHC的吸收。在TTS的耳蜗区域,GTTR的OHC摄取增加明显大于相邻的柱状细胞。在对照小鼠中,我们在OHC束中约50%的潜在位置鉴定了立体纤毛尖端连接。但是,在能够诱导TTS的水平下接受WBN的小鼠中,OHC尖端连接的数量明显减少。这些数据表明,在TTS期间,OHCs吸收GTTR的原因是,存活的,机械门控的MET通道和/或非MET氨基糖苷透过通道在大声暴露后被激活的渗透增加。尖端连接的缺失会使毛细胞超极化,并可能通过毛细胞表达的氨基糖苷渗透通道增加药物的吸收。 TTS对氨基糖苷渗透通道动力学的影响将为大声增强氨基糖苷摄取的机制提供新的思路,并因此对耳毒性协同作用进行研究。

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