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锌指蛋白423通过初级纤毛功能调控音猬因子信号通路。

Zfp423 Regulates Sonic Hedgehog Signaling via Primary Cilium Function.

作者信息

Hong Chen-Jei, Hamilton Bruce A

机构信息

Department of Cellular & Molecular Medicine, University of California, San Diego School of Medicine, La Jolla, California, United States of America.

Department of Medicine, University of California, San Diego School of Medicine, La Jolla, California, United States of America.

出版信息

PLoS Genet. 2016 Oct 11;12(10):e1006357. doi: 10.1371/journal.pgen.1006357. eCollection 2016 Oct.

Abstract

Zfp423 encodes a 30-zinc finger transcription factor that intersects several canonical signaling pathways. Zfp423 mutations result in ciliopathy-related phenotypes, including agenesis of the cerebellar vermis in mice and Joubert syndrome (JBTS19) and nephronophthisis (NPHP14) in humans. Unlike most ciliopathy genes, Zfp423 encodes a nuclear protein and its developmental expression is complex, leading to alternative proposals for cellular mechanisms. Here we show that Zfp423 is expressed by cerebellar granule cell precursors, that loss of Zfp423 in these precursors leads to cell-intrinsic reduction in proliferation, loss of response to Shh, and primary cilia abnormalities that include diminished frequency of both Smoothened and IFT88 localization. Loss of Zfp423 alters expression of several genes encoding key cilium components, including increased expression of Tulp3. Tulp3 is a direct binding target of Zfp423 and reducing the overexpression of Tulp3 in Zfp423-deficient cells suppresses Smoothened translocation defects. These results define Zfp423 deficiency as a bona fide ciliopathy, acting upstream of Shh signaling, and indicate a mechanism intrinsic to granule cell precursors for the resulting cerebellar hypoplasia.

摘要

Zfp423编码一种含有30个锌指的转录因子,该因子与多种经典信号通路相交。Zfp423突变会导致与纤毛病相关的表型,包括小鼠小脑蚓部发育不全以及人类的乔伯特综合征(JBTS19)和肾单位肾痨(NPHP14)。与大多数纤毛病基因不同,Zfp423编码一种核蛋白,其发育表达较为复杂,这导致了关于细胞机制的不同提议。在这里,我们表明Zfp423由小脑颗粒细胞前体表达,这些前体中Zfp423的缺失会导致细胞内在增殖减少、对Shh反应丧失以及初级纤毛异常,包括Smoothened和IFT88定位频率降低。Zfp423的缺失改变了几个编码关键纤毛成分的基因的表达,包括Tulp3表达增加。Tulp3是Zfp423的直接结合靶点,降低Zfp423缺陷细胞中Tulp3的过表达可抑制Smoothened易位缺陷。这些结果将Zfp423缺陷定义为一种真正的纤毛病,在Shh信号传导上游起作用,并表明颗粒细胞前体的内在机制导致了小脑发育不全。

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