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Rictor经历糖原合酶激酶3(GSK3)依赖性、FBXW7介导的泛素化和蛋白酶体降解。

Rictor Undergoes Glycogen Synthase Kinase 3 (GSK3)-dependent, FBXW7-mediated Ubiquitination and Proteasomal Degradation.

作者信息

Koo Junghui, Wu Xiaoyun, Mao Zixu, Khuri Fadlo R, Sun Shi-Yong

机构信息

From the Departments of Hematology and Medical Oncology and.

Pharmacology, Emory University School of Medicine and Winship Cancer Institute, Atlanta, Georgia 30322.

出版信息

J Biol Chem. 2015 May 29;290(22):14120-9. doi: 10.1074/jbc.M114.633057. Epub 2015 Apr 20.

Abstract

Rictor, an essential component of mTOR complex 2 (mTORC2), plays a pivotal role in regulating mTOR signaling and other biological functions. Posttranslational regulation of rictor (e.g. via degradation) and its underlying mechanism are largely undefined and thus are the focus of this study. Chemical inhibition of the proteasome increased rictor ubiquitination and levels. Consistently, inhibition of FBXW7 with various genetic means including knockdown, knock-out, and enforced expression of a dominant-negative mutant inhibited rictor ubiquitination and increased rictor levels, whereas enforced expression of FBXW7 decreased rictor stability and levels. Moreover, we detected an interaction between FBXW7 and rictor. Hence, rictor is degraded through an FBXW7-mediated ubiquitination/proteasome mechanism. We show that this process is dependent on glycogen synthase kinase 3 (GSK3): GSK3 was associated with rictor and directly phosphorylated the Thr-1695 site in a putative CDC4 phospho-degron motif of rictor; mutation of this site impaired the interaction between rictor and FBXW7, decreased rictor ubiquitination, and increased rictor stability. Finally, enforced activation of Akt enhanced rictor levels and increased mTORC2 activity as evidenced by increased formation of mTORC2 and elevated phosphorylation of Akt, SGK1, and PKCα. Hence we suggest that PI3K/Akt signaling may positively regulate mTORC2 signaling, likely through suppressing GSK3-dependent rictor degradation.

摘要

Rictor是哺乳动物雷帕霉素靶蛋白复合物2(mTORC2)的重要组成部分,在调节mTOR信号传导和其他生物学功能中起关键作用。Rictor的翻译后调控(例如通过降解)及其潜在机制在很大程度上尚未明确,因此是本研究的重点。蛋白酶体的化学抑制增加了rictor的泛素化和水平。同样,用包括敲低、敲除和显性负突变体的强制表达等各种遗传手段抑制FBXW7,可抑制rictor的泛素化并增加rictor水平,而FBXW7的强制表达则降低了rictor的稳定性和水平。此外,我们检测到FBXW7与rictor之间存在相互作用。因此,rictor通过FBXW7介导的泛素化/蛋白酶体机制被降解。我们表明,这一过程依赖于糖原合酶激酶3(GSK3):GSK3与rictor相关,并直接磷酸化rictor假定的CDC4磷酸降解基序中的Thr-1695位点;该位点的突变损害了rictor与FBXW7之间的相互作用,降低了rictor的泛素化,并增加了rictor的稳定性。最后,Akt的强制激活提高了rictor水平并增加了mTORC2活性,mTORC2形成增加以及Akt、SGK1和PKCα磷酸化升高证明了这一点。因此,我们认为PI3K/Akt信号传导可能通过抑制GSK3依赖的rictor降解来正向调节mTORC2信号传导。

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