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转化生长因子β以Smad3依赖的方式促进β-TrCP介导的Cdc25A降解。

Transforming growth factor beta facilitates beta-TrCP-mediated degradation of Cdc25A in a Smad3-dependent manner.

作者信息

Ray Dipankar, Terao Yasuhisa, Nimbalkar Dipali, Chu Li-Hao, Donzelli Maddalena, Tsutsui Tateki, Zou Xianghong, Ghosh Asish K, Varga John, Draetta Giulio F, Kiyokawa Hiroaki

机构信息

Department of Biochemistry and Molecular Genetics, University of Illinois College of Medicine, Chicago, IL 60607, USA.

出版信息

Mol Cell Biol. 2005 Apr;25(8):3338-47. doi: 10.1128/MCB.25.8.3338-3347.2005.

Abstract

Ubiquitin-dependent degradation of Cdc25A is a major mechanism for damage-induced S-phase checkpoint. Two ubiquitin ligases, the Skp1-cullin-beta-TrCP (SCFbeta-TrCP) complex and the anaphase-promoting complex (APCCdh1), are involved in Cdc25A degradation. Here we demonstrate that the transforming growth factor beta (TGF-beta)-Smad3 pathway promotes SCF(beta-TrCP)-mediated Cdc25A ubiquitination. Cells treated with TGF-beta, as well as cells transfected with Smad3 or a constitutively active type I TGF-beta receptor, exhibit increased ubiquitination and markedly shortened half-lives of Cdc25A. Furthermore, Cdc25A is stabilized in cells transfected with Smad3 small interfering RNA (siRNA) and cells from Smad3-null mice. TGF-beta-induced ubiquitination is associated with Cdc25A phosphorylation at the beta-TrCP docking site (DS82G motif) and physical association of Cdc25A with Smad3 and beta-TrCP. Cdc25A mutant proteins deficient in DS82G phosphorylation are resistant to TGF-beta-Smad3-induced degradation, whereas a Cdc25A mutant protein defective in APCCdh1 recognition undergoes efficient degradation. Smad3 siRNA inhibits beta-TrCP-Cdc25A interaction and Cdc25A degradation in response to TGF-beta. beta-TrCP2 siRNA also inhibits Smad3-induced Cdc25A degradation. In contrast, Cdh1 siRNA had no effect on Cdc25A down-regulation by Smad3. These data suggest that Smad3 plays a key role in the regulation of Cdc25A ubiquitination by SCFbeta-TrCP and that Cdc25A stabilization observed in various cancers could be associated with defects in the TGF-beta-Smad3 pathway.

摘要

泛素依赖性的Cdc25A降解是损伤诱导的S期检查点的主要机制。两种泛素连接酶,即Skp1-遍在蛋白连接酶β-TrCP(SCFβ-TrCP)复合物和后期促进复合物(APCCdh1),参与Cdc25A的降解。在此我们证明,转化生长因子β(TGF-β)-Smad3信号通路促进SCF(β-TrCP)介导的Cdc25A泛素化。用TGF-β处理的细胞,以及转染了Smad3或组成型活性I型TGF-β受体的细胞,均表现出Cdc25A泛素化增加且半衰期明显缩短。此外,在转染了Smad3小干扰RNA(siRNA)的细胞以及来自Smad3基因敲除小鼠的细胞中,Cdc25A是稳定的。TGF-β诱导的泛素化与Cdc25A在β-TrCP对接位点(DS82G基序)的磷酸化以及Cdc25A与Smad3和β-TrCP的物理结合有关。缺乏DS82G磷酸化的Cdc25A突变蛋白对TGF-β-Smad3诱导的降解具有抗性,而在APCCdh1识别方面有缺陷的Cdc25A突变蛋白则能有效降解。Smad3 siRNA抑制β-TrCP-Cdc25A相互作用以及TGF-β诱导的Cdc25A降解。β-TrCP2 siRNA也抑制Smad3诱导的Cdc25A降解。相反,Cdh1 siRNA对Smad3介导的Cdc25A下调没有影响。这些数据表明,Smad3在SCFβ-TrCP对Cdc25A泛素化的调控中起关键作用,并且在各种癌症中观察到的Cdc25A稳定可能与TGF-β-Smad3信号通路的缺陷有关。

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