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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Fate of mammalian cochlear hair cells and stereocilia after loss of the stereocilia.
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Fate of mammalian cochlear hair cells and stereocilia after loss of the stereocilia.

机译:失去立体睫毛后,哺乳动物的耳蜗毛细胞和立体睫毛的命运。

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摘要

Cochlear hair cells transduce mechanical stimuli into electrical activity. The site of hair cell transduction is the hair bundle, an array of stereocilia with different height arranged in a staircase. Tip links connect the apex of each stereocilium to the side of its taller neighbor. The hair bundle and tip links of hair cells are susceptible to acoustic trauma and ototoxic drugs. It has been shown that hair cells in lower vertebrates and in the mammalian vestibular system may survive bundle loss and undergo self-repair of the stereocilia. Our goals were to determine whether cochlear hair cells could survive the trauma and whether the tip link and/or the hair bundle could be regenerated. We simulated the acoustic trauma-induced tip link damage or stereociliary loss by disrupting tip links or ablating the hair bundles in the cultured organ of Corti from neonatal gerbils. Hair-cell fate and stereociliary morphology and function were examined using confocal and scanning electron microscopies and electrophysiology. Most bundleless hair cells survived and developed for approximately 2 weeks. However, no spontaneous hair-bundle regeneration was observed. When tip links were ruptured, repair of tip links and restoration of mechanotransduction were observed in <24 h. Our study suggests that the dynamic nature of the hair cell's transduction apparatus is retained despite the fact that regeneration of the hair bundle is lost in mammalian cochlear hair cells.
机译:耳蜗毛细胞将机械刺激转化为电活动。毛细胞转导的部位是发束,在楼梯中排列着一系列高度不同的立体纤毛。提示链接将每个立体声的顶点连接到其较高邻居的侧面。毛束和毛细胞的尖端链接易受听觉创伤和耳毒性药物的影响。已经显示,在较低的脊椎动物中和在哺乳动物前庭系统中的毛细胞可以在束丢失的情况下幸存下来并经历立体纤维的自我修复。我们的目标是确定耳蜗毛细胞是否可以在创伤中幸存,以及尖端连接和/或发束是否可以再生。我们通过破坏尖端连接或消融来自新生沙鼠的Corti培养器官中的发束,模拟了由声学创伤引起的尖端连接损伤或立体睫状体丧失。使用共聚焦和扫描电子显微镜及电生理学检查了毛细胞的命运和纤毛形态和功能。大多数无束毛细胞存活并发育约2周。但是,没有观察到自发的发束再生。当尖端连接断裂时,在<24 h内观察到了尖端连接的修复和机械转导的恢复。我们的研究表明,尽管在哺乳动物的耳蜗毛细胞中失去了发束的再生,但仍保留了毛细胞转导装置的动态特性。

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