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细胞迁移、插入和生长调节哺乳动物耳蜗的延伸。

Cell migration, intercalation and growth regulate mammalian cochlear extension.

作者信息

Driver Elizabeth Carroll, Northrop Amy, Kelley Matthew W

机构信息

Laboratory of Cochlear Development, National Institute on Deafness and Other Communication Disorders, NIH, Bethesda, MD 20892, USA

Laboratory of Cochlear Development, National Institute on Deafness and Other Communication Disorders, NIH, Bethesda, MD 20892, USA.

出版信息

Development. 2017 Oct 15;144(20):3766-3776. doi: 10.1242/dev.151761. Epub 2017 Sep 4.

Abstract

Developmental remodeling of the sensory epithelium of the cochlea is required for the formation of an elongated, tonotopically organized auditory organ, but the cellular processes that mediate these events are largely unknown. We used both morphological assessments of cellular rearrangements and time-lapse imaging to visualize cochlear remodeling in mouse. Analysis of cell redistribution showed that the cochlea extends through a combination of radial intercalation and cell growth. Live imaging demonstrated that concomitant cellular intercalation results in a brief period of epithelial convergence, although subsequent changes in cell size lead to medial-lateral spreading. Supporting cells, which retain contact with the basement membrane, exhibit biased protrusive activity and directed movement along the axis of extension. By contrast, hair cells lose contact with the basement membrane, but contribute to continued outgrowth through increased cell size. Regulation of cellular protrusions, movement and intercalation within the cochlea all require myosin II. These results establish, for the first time, many of the cellular processes that drive the distribution of sensory cells along the tonotopic axis of the cochlea.

摘要

耳蜗感觉上皮的发育重塑是形成一个细长的、具有音调组织的听觉器官所必需的,但介导这些事件的细胞过程在很大程度上尚不清楚。我们使用细胞重排的形态学评估和延时成像来观察小鼠耳蜗的重塑过程。细胞重新分布分析表明,耳蜗通过径向插入和细胞生长的组合而延伸。实时成像显示,伴随的细胞插入会导致上皮细胞短暂汇聚,尽管随后细胞大小的变化会导致细胞向内侧-外侧扩散。与基底膜保持接触的支持细胞表现出有偏向性的突出活动,并沿延伸轴进行定向移动。相比之下,毛细胞与基底膜失去接触,但通过细胞大小的增加促进了持续的生长。耳蜗内细胞突起、移动和插入的调节都需要肌球蛋白II。这些结果首次确定了许多驱动感觉细胞沿耳蜗音调轴分布的细胞过程。

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