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Fgf8 induces pillar cell fate and regulates cellular patterning in the mammalian cochlea.

机译:Fgf8诱导柱状细胞命运并调节哺乳动物耳蜗中的细胞模式。

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The mammalian auditory sensory epithelium (the organ of Corti) contains a number of unique cell types that are arranged in ordered rows. Two of these cell types, inner and outer pillar cells (PCs), are arranged in adjacent rows that form a boundary between a single row of inner hair cells and three rows of outer hair cells (OHCs). PCs are required for auditory function, as mice lacking PCs owing to a mutation in Fgfr3 are deaf. Here, using in vitro and in vivo techniques, we demonstrate that an Fgf8 signal arising from the inner hair cells is the key component in an inductive pathway that regulates the number, position and rate of development of PCs. Deletion of Fgf8 or inhibition of binding between Fgf8 and Fgfr3 leads to defects in PC development, whereas overexpression of Fgf8 or exogenous Fgfr3 activation induces ectopic PC formation and inhibits OHC development. These results suggest that Fgf8-Fgfr3 interactions regulate cellular patterning within the organ of Corti through the induction of one cell fate (PC) and simultaneous inhibition of an alternate fate (OHC) in separate progenitor cells. Some of the effects of both inhibition and overactivation of the Fgf8-Fgfr3 signaling pathway are reversible, suggesting that PC differentiation is dependent upon constant activation of Fgfr3 by Fgf8. These results suggest that PCs might exist in a transient state of differentiation that makes them potential targets for regenerative therapies.
机译:哺乳动物的听觉感觉上皮(Corti器官)包含许多独特的细胞类型,这些细胞以有序的行排列。这些单元格类型中的两种,即内部和外部柱状单元(PC),排列在相邻的行中,这些行在单行内部毛发单元和三行外部毛发单元(OHC)之间形成边界。听觉功能需要PC,因为由于Fgfr3突变而缺乏PC的小鼠是聋的。在这里,我们使用体外和体内技术,证明了由内部毛细胞产生的Fgf8信号是调节PC的数量,位置和速率的诱导途径中的关键成分。 Fgf8的删除或Fgf8与Fgfr3之间的结合的抑制导致PC发育缺陷,而Fgf8的过表达或外源性Fgfr3活化则诱导异位PC形成并抑制OHC发育。这些结果表明,Fgf8-Fgfr3相互作用通过诱导一种细胞命运(PC)和同时抑制另一种祖细胞中的另一种命运(OHC)来调节Corti器官内的细胞模式。 Fgf8-Fgfr3信号通路的抑制和过度激活的某些作用是可逆的,这表明PC分化取决于Fgf8对Fgfr3的持续激活。这些结果表明,PC可能以短暂的分化状态存在,从而使其成为再生疗法的潜在靶标。

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