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FBXL3 在哺乳动物昼夜节律反馈环中的双重作用对于周期的确定和时钟的稳健性很重要。

Dual roles of FBXL3 in the mammalian circadian feedback loops are important for period determination and robustness of the clock.

机构信息

Ministry of Education Key Laboratory of Model Animal for Disease Study, Model Animal Research Center, Medical School of Nanjing University, Pukou District, Nanjing 210061, China.

出版信息

Proc Natl Acad Sci U S A. 2013 Mar 19;110(12):4750-5. doi: 10.1073/pnas.1302560110. Epub 2013 Mar 5.

Abstract

The mammalian circadian clock is composed of interlocking feedback loops. Cryptochrome is a central component in the core negative feedback loop, whereas Rev-Erbα, a member of the nuclear receptor family, is an essential component of the interlocking loop. To understand the roles of different clock genes, we conducted a genetic interaction screen by generating single- and double-mutant mice. We found that the deletion of Rev-erbα in F-box/leucine rich-repeat protein (Fbxl3)-deficient mice rescued its long-circadian period phenotype, and our results further revealed that FBXL3 regulates Rev-Erb/retinoic acid receptor-related orphan receptor-binding element (RRE)-mediated transcription by inactivating the Rev-Erbα:histone deacetylase 3 corepressor complex. By analyzing the Fbxl3 and Cryptochrome 1 double-mutant mice, we found that FBXL3 also regulates the amplitudes of E-box-driven gene expression. These two separate roles of FBXL3 in circadian feedback loops provide a mechanism that contributes to the period determination and robustness of the clock.

摘要

哺乳动物的生物钟由相互连锁的反馈环组成。隐花色素是核心负反馈环中的一个核心组成部分,而核受体家族的成员 Rev-Erbα 则是相互连锁环的一个重要组成部分。为了了解不同生物钟基因的作用,我们通过生成单突变和双突变小鼠进行了遗传相互作用筛选。我们发现,在 F-box/富含亮氨酸重复蛋白 (Fbxl3) 缺失的小鼠中删除 Rev-Erbα 可以挽救其长生物钟周期表型,我们的结果进一步表明,FBXL3 通过使 Rev-Erbα:组蛋白去乙酰化酶 3 共抑制复合物失活来调节 Rev-Erb/视黄酸受体相关孤儿受体结合元件 (RRE) 介导的转录。通过分析 Fbxl3 和 Cryptochrome 1 双突变小鼠,我们发现 FBXL3 还调节 E-box 驱动的基因表达的幅度。FBXL3 在生物钟反馈环中的这两个独立作用为周期确定和时钟稳健性提供了一种机制。

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