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本文引用的文献

1
SCFbeta-TRCP links Chk1 signaling to degradation of the Cdc25A protein phosphatase.SCFβ-TRCP将Chk1信号传导与Cdc25A蛋白磷酸酶的降解联系起来。
Genes Dev. 2003 Dec 15;17(24):3062-74. doi: 10.1101/gad.1157503. Epub 2003 Dec 17.
2
Degradation of Cdc25A by beta-TrCP during S phase and in response to DNA damage.在S期及响应DNA损伤时,β-TrCP介导的Cdc25A降解
Nature. 2003 Nov 6;426(6962):87-91. doi: 10.1038/nature02082.
3
Structure of a beta-TrCP1-Skp1-beta-catenin complex: destruction motif binding and lysine specificity of the SCF(beta-TrCP1) ubiquitin ligase.β-TrCP1-Skp1-β-连环蛋白复合物的结构:SCF(β-TrCP1)泛素连接酶的破坏基序结合及赖氨酸特异性
Mol Cell. 2003 Jun;11(6):1445-56. doi: 10.1016/s1097-2765(03)00234-x.
4
Prophase destruction of Emi1 by the SCF(betaTrCP/Slimb) ubiquitin ligase activates the anaphase promoting complex to allow progression beyond prometaphase.SCF(βTrCP/Slimb)泛素连接酶在前期对Emi1的破坏会激活后期促进复合体,以使细胞能够越过前中期继续发展。
Dev Cell. 2003 Jun;4(6):813-26. doi: 10.1016/s1534-5807(03)00153-9.
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Control of meiotic and mitotic progression by the F box protein beta-Trcp1 in vivo.体内F盒蛋白β - Trcp1对减数分裂和有丝分裂进程的调控
Dev Cell. 2003 Jun;4(6):799-812. doi: 10.1016/s1534-5807(03)00154-0.
6
Tome-1, a trigger of mitotic entry, is degraded during G1 via the APC.Tome-1是有丝分裂进入的触发因子,在G1期通过后期促进复合物被降解。
Cell. 2003 Apr 4;113(1):101-13. doi: 10.1016/s0092-8674(03)00232-0.
7
Proteomic screen finds pSer/pThr-binding domain localizing Plk1 to mitotic substrates.蛋白质组学筛选发现磷酸化丝氨酸/苏氨酸结合结构域将Plk1定位于有丝分裂底物。
Science. 2003 Feb 21;299(5610):1228-31. doi: 10.1126/science.1079079.
8
Loss of CDC5 function in Saccharomyces cerevisiae leads to defects in Swe1p regulation and Bfa1p/Bub2p-independent cytokinesis.酿酒酵母中CDC5功能的丧失会导致Swe1p调控缺陷以及不依赖Bfa1p/Bub2p的胞质分裂缺陷。
Genetics. 2003 Jan;163(1):21-33. doi: 10.1093/genetics/163.1.21.
9
Active cyclin B1-Cdk1 first appears on centrosomes in prophase.活跃的细胞周期蛋白B1-细胞周期蛋白依赖性激酶1在前期首先出现在中心体上。
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10
Cooperative phosphorylation including the activity of polo-like kinase 1 regulates the subcellular localization of cyclin B1.包括polo样激酶1活性在内的协同磷酸化调节细胞周期蛋白B1的亚细胞定位。
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M期激酶通过SCFβ-TrCP诱导体细胞型Wee1发生磷酸化依赖性泛素化。

M-phase kinases induce phospho-dependent ubiquitination of somatic Wee1 by SCFbeta-TrCP.

作者信息

Watanabe Nobumoto, Arai Harumi, Nishihara Yoshifumi, Taniguchi Makoto, Watanabe Naoko, Hunter Tony, Osada Hiroyuki

机构信息

Antibiotics Laboratory, Discovery Research Institute, RIKEN, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.

出版信息

Proc Natl Acad Sci U S A. 2004 Mar 30;101(13):4419-24. doi: 10.1073/pnas.0307700101. Epub 2004 Mar 22.

DOI:10.1073/pnas.0307700101
PMID:15070733
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC384762/
Abstract

Wee1, the Cdc2 inhibitory kinase, needs to be down-regulated at the onset of mitosis to ensure rapid activation of Cdc2. Previously, we have shown that human somatic Wee1 (Wee1A) is down-regulated both by protein phosphorylation and degradation, but the underlying mechanisms had not been elucidated. In the present study, we have identified the beta-transducin repeat-containing protein 1/2 (beta-TrCP1/2) F-box protein-containing SKP1/Cul1/F-box protein (SCF) complex (SCF(beta-TrCP1/2)) as an E3 ubiquitin ligase for Wee1A ubiquitination. Although Wee1A lacks a consensus DS(p)GXXS(p) phospho-dependent binding motif for beta-TrCP, recognition of Wee1A by beta-TrCP depended on phosphorylation, and two serine residues in Wee1A, S53 and S123, were found to be the most important phosphorylation sites for beta-TrCP recognition. We have found also that the major M-phase kinases polo-like kinase 1 (Plk1) and Cdc2 are responsible for the phosphorylation of S53 and S123, respectively, and that in each case phosphorylation generates an unconventional phospho-degron (signal for degradation) that can be recognized by beta-TrCP. Phosphorylation of Wee1A by these kinases cooperatively stimulated the recognition and ubiquitination of Wee1A by SCF(beta-TrCP1/2) in vitro. Mutation of these residues or depletion of beta-TrCP by small-interfering RNA treatment increased the stability of Wee1A in HeLa cells. Moreover, our analysis indicates that beta-TrCP-dependent degradation of Wee1A is important for the normal onset of M-phase in vivo. These results also establish the existence of a feedback loop between Cdc2 and Wee1A in somatic cells that depends on ubiquitination and protein degradation and ensures the rapid activation of Cdc2 when cells are ready to divide.

摘要

Wee1是一种Cdc2抑制激酶,在有丝分裂开始时需要下调,以确保Cdc2的快速激活。此前,我们已经表明,人类体细胞中的Wee1(Wee1A)通过蛋白质磷酸化和降解两种方式下调,但其潜在机制尚未阐明。在本研究中,我们鉴定了含β-转导素重复序列蛋白1/2(β-TrCP1/2)的F-盒蛋白的SKP1/Cul1/F-盒蛋白(SCF)复合物(SCF(β-TrCP1/2))作为Wee1A泛素化的E3泛素连接酶。尽管Wee1A缺乏与β-TrCP的一致DS(p)GXXS(p)磷酸化依赖性结合基序,但β-TrCP对Wee1A的识别依赖于磷酸化,并且发现Wee1A中的两个丝氨酸残基S53和S123是β-TrCP识别的最重要磷酸化位点。我们还发现,主要的M期激酶polo样激酶1(Plk1)和Cdc2分别负责S53和S123的磷酸化,并且在每种情况下,磷酸化都会产生一种非常规的磷酸化降解信号,可被β-TrCP识别。这些激酶对Wee1A的磷酸化在体外协同刺激了SCF(β-TrCP1/2)对Wee1A的识别和泛素化。通过小干扰RNA处理使这些残基突变或使β-TrCP缺失,可增加HeLa细胞中Wee1A的稳定性。此外,我们的分析表明,β-TrCP依赖性的Wee1A降解对于体内M期的正常开始很重要。这些结果还证实了体细胞中Cdc2和Wee1A之间存在一个反馈环,该反馈环依赖于泛素化和蛋白质降解,并确保细胞准备分裂时Cdc2迅速激活。