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基于RNA干扰的果蝇无翅信号通路的生化特性研究

Biochemical characterization of the Drosophila wingless signaling pathway based on RNA interference.

作者信息

Matsubayashi Hiroko, Sese Sonoka, Lee Jong-Seo, Shirakawa Tadaoki, Iwatsubo Takeshi, Tomita Taisuke, Yanagawa Shin-ichi

机构信息

Department of Viral Oncology, Institute for Virus Research, Kyoto University, Sakyo-Ku, Kyoto 606-85071, Japan.

出版信息

Mol Cell Biol. 2004 Mar;24(5):2012-24. doi: 10.1128/MCB.24.5.2012-2024.2004.

Abstract

Regulation of Armadillo (Arm) protein levels through ubiquitin-mediated degradation plays a central role in the Wingless (Wg) signaling. Although zeste-white3 (Zw3)-mediated Arm phosphorylation has been implicated in its degradation, we have recently shown that casein kinase Ialpha (CKIalpha) also phosphorylates Arm and induces its degradation. However, it remains unclear how CKIalpha and Zw3, as well as other components of the Arm degradation complex, regulate Arm phosphorylation in response to Wg. In particular, whether Wg signaling suppresses CKIalpha- or Zw3-mediated Arm phosphorylation in vivo is unknown. To clarify these issues, we performed a series of RNA interference (RNAi)-based analyses in Drosophila S2R+ cells by using antibodies that specifically recognize Arm phosphorylated at different serine residues. These analyses revealed that Arm phosphorylation at serine-56 and at threonine-52, serine-48, and serine-44, is mediated by CKIalpha and Zw3, respectively, and that Zw3-directed Arm phosphorylation requires CKIalpha-mediated priming phosphorylation. Daxin stimulates Zw3- but not CKIalpha-mediated Arm phosphorylation. Wg suppresses Zw3- but not CKIalpha-mediated Arm phosphorylation, indicating that a vital regulatory step in Wg signaling is Zw3-mediated Arm phosphorylation. In addition, further RNAi-based analyses of the other aspects of the Wg pathway clarified that Wg-induced Dishevelled phosphorylation is due to CKIalpha and that presenilin and protein kinase A play little part in the regulation of Arm protein levels in Drosophila tissue culture cells.

摘要

通过泛素介导的降解来调节犰狳(Arm)蛋白水平在无翅(Wg)信号传导中起着核心作用。尽管zeste-white3(Zw3)介导的Arm磷酸化与它的降解有关,但我们最近发现酪蛋白激酶Iα(CKIα)也能使Arm磷酸化并诱导其降解。然而,目前尚不清楚CKIα和Zw3以及Arm降解复合体的其他组分如何响应Wg来调节Arm磷酸化。特别是,Wg信号在体内是否抑制CKIα或Zw3介导的Arm磷酸化尚不清楚。为了阐明这些问题,我们在果蝇S2R +细胞中使用特异性识别在不同丝氨酸残基处磷酸化的Arm的抗体进行了一系列基于RNA干扰(RNAi)的分析。这些分析表明,丝氨酸56处以及苏氨酸52、丝氨酸48和丝氨酸44处的Arm磷酸化分别由CKIα和Zw3介导,并且Zw3指导的Arm磷酸化需要CKIα介导的起始磷酸化。达新刺激Zw3介导而非CKIα介导的Arm磷酸化。Wg抑制Zw3介导而非CKIα介导的Arm磷酸化,表明Wg信号传导中的一个关键调节步骤是Zw3介导的Arm磷酸化。此外,基于RNAi对Wg途径其他方面的进一步分析表明,Wg诱导的散乱蛋白磷酸化是由于CKIα,并且早老素和蛋白激酶A在果蝇组织培养细胞中对Arm蛋白水平的调节作用很小。

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