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肾上腺退化的时间由Sf1 SUMO化与Dax1之间的协同相互作用控制。

Timing of adrenal regression controlled by synergistic interaction between Sf1 SUMOylation and Dax1.

作者信息

Xing Yewei, Morohashi Ken-Ichirou, Ingraham Holly A, Hammer Gary D

机构信息

Department of Internal Medicine, Division of Metabolism, Endocrinology and Diabetes, University of Michigan Health System, Ann Arbor, MI 48109-2200, USA.

Department of Molecular Biology, Graduate School of Medical Sciences, Kyushu University, Maidashi 3-1-1, Higashi-ku, Fukuoka 812-8582, Japan.

出版信息

Development. 2017 Oct 15;144(20):3798-3807. doi: 10.1242/dev.150516. Epub 2017 Sep 11.

Abstract

The nuclear receptor steroidogenic factor 1 (Sf1, Nr5a1, Ad4bp) is crucial for formation, development and function of steroidogenic tissues. A fetal adrenal enhancer (FAdE) in the gene was previously identified to direct expression exclusively in the fetal adrenal cortex and is bound by both Sf1 and Dax1. Here, we have examined the function of Sf1 SUMOylation and its interaction with Dax1 on FAdE function A diffused prolonged pattern of FAdE expression and delayed regression of the postnatal fetal cortex (X-zone) were detected in both the SUMOylation-deficient- and knockout mouse lines, with FAdE expression/activity retained in the postnatal 20αHSD-positive postnatal X-zone cells. studies indicated that Sf1 SUMOylation, although not directly influencing DNA binding, actually increased binding of Dax1 to Sf1 to further enhance transcriptional repression of FAdE. Taken together, these studies define a crucial repressor function of Sf1 SUMOylation and Dax1 in the physiological cessation of FAdE-mediated Sf1 expression and the resultant regression of the postnatal fetal cortex (X-zone).

摘要

核受体类固醇生成因子1(Sf1,Nr5a1,Ad4bp)对于类固醇生成组织的形成、发育和功能至关重要。先前已在该基因中鉴定出一个胎儿肾上腺增强子(FAdE),其可指导基因仅在胎儿肾上腺皮质中表达,且与Sf1和Dax1均结合。在此,我们研究了Sf1的SUMO化功能及其与Dax1在FAdE功能上相互作用。在SUMO化缺陷和基因敲除小鼠品系中均检测到FAdE表达呈弥散性延长模式以及出生后胎儿皮质(X区)的退化延迟,FAdE表达/活性保留在出生后20αHSD阳性的出生后X区细胞中。研究表明,Sf1的SUMO化虽然不直接影响DNA结合,但实际上增加了Dax1与Sf1的结合,从而进一步增强了FAdE的转录抑制。综上所述,这些研究确定了Sf1的SUMO化和Dax1在FAdE介导的Sf1表达的生理性终止以及出生后胎儿皮质(X区)的退化中的关键抑制功能。

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