Emx2 和小鼠内耳早期毛细胞发育。

Emx2 and early hair cell development in the mouse inner ear.

机构信息

Department of Biomedical Science, Addison Building, Western Bank, Sheffield S10 2TN, UK.

出版信息

Dev Biol. 2010 Apr 15;340(2):547-56. doi: 10.1016/j.ydbio.2010.02.004. Epub 2010 Feb 10.

Abstract

Emx2 is a homeodomain protein that plays a critical role in inner ear development. Homozygous null mice die at birth with a range of defects in the CNS, renal system and skeleton. The cochlea is shorter than normal with about 60% fewer auditory hair cells. It appears to lack outer hair cells and some supporting cells are either absent or fail to differentiate. Many of the hair cells differentiate in pairs and although their hair bundles develop normally their planar cell polarity is compromised. Measurements of cell polarity suggest that classic planar cell polarity molecules are not directly influenced by Emx2 and that polarity is compromised by developmental defects in the sensory precursor population or by defects in epithelial cues for cell alignment. Planar cell polarity is normal in the vestibular epithelia although polarity reversal across the striola is absent in both the utricular and saccular maculae. In contrast, cochlear hair cell polarity is disorganized. The expression domain for Bmp4 is expanded and Fgfr1 and Prox1 are expressed in fewer cells in the cochlear sensory epithelium of Emx2 null mice. We conclude that Emx2 regulates early developmental events that balance cell proliferation and differentiation in the sensory precursor population.

摘要

Emx2 是一种同源域蛋白,在内耳发育中起着关键作用。纯合子缺失小鼠在出生时就会出现中枢神经系统、肾脏系统和骨骼系统的一系列缺陷。耳蜗比正常情况下短,大约有 60%的听觉毛细胞缺失。它似乎缺乏外毛细胞,一些支持细胞要么缺失,要么无法分化。许多毛细胞成对分化,尽管它们的毛束发育正常,但它们的平面细胞极性受到损害。细胞极性的测量表明,经典的平面细胞极性分子不受 Emx2 的直接影响,而极性是由于感觉前体细胞群的发育缺陷或上皮细胞对齐的信号缺陷而受到损害。前庭上皮中的平面细胞极性是正常的,尽管在嵴纹中没有出现极性反转,无论是在椭圆囊斑还是球囊斑中都是如此。相比之下,耳蜗毛细胞极性是紊乱的。Bmp4 的表达域扩大,Emx2 缺失小鼠耳蜗感觉上皮中 Fgfr1 和 Prox1 的表达细胞数量减少。我们得出结论,Emx2 调节早期发育事件,平衡感觉前体细胞群中的细胞增殖和分化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c7f7/2877772/f264c2a1de60/gr1.jpg

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