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Regulation of c-Myc Protein Abundance by a Protein Phosphatase 2A–Glycogen Synthase Kinase 3β–Negative Feedback Pathway

机译:蛋白磷酸酶2A–糖原合酶激酶3β–负反馈途径对c-Myc蛋白丰度的调节

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摘要

Regulation of Myc protein abundance is critical for normal cell growth as evidenced by the fact that deregulated Myc expression is a hallmark of many cancers. One of several important mechanisms that control Myc levels involves its phosphorylation-dependent proteolysis. Previous studies have shown that phosphorylation of threonine 58 by glycogen synthase kinase 3β (GSK3β) within the conserved Myc Box I sequence results in binding by the ubiquitin ligase Fbw7-SCF complex, followed by ubiquitination and proteasome-mediated degradation of Myc. Here, we show that induction of Myc in several cell types correlates with loss of the inhibitory serine 9 phosphorylation of GSK3β and its increased kinase activity. The Myc-induced decrease in serine 9 phosphorylation is blocked by okadaic acid, an inhibitor of protein phosphatase 2A (PP2A). We therefore examined components of PP2A complexes and found that, among the regulatory B56 subunits, only the promoter of the ppp2r5d gene, encoding the B56δ isoform, is directly bound and transcriptionally activated by Myc in an E-box–dependent manner. Furthermore, we find that B56δ associates with both GSK3β and Myc, resulting in phosphorylation of Myc threonine 58, the well-established signal for ubiquitination and degradation. Furthermore, overexpression, or siRNA-mediated knockdown, of B56δ respectively results in accelerated, or retarded, rates of Myc degradation. Together, our data indicate that Myc limits its own abundance through a negative feedback pathway involving PP2A and GSK3β.
机译:Myc蛋白丰度的调节对于正常细胞生长至关重要,这一事实证明了Myc表达失调是许多癌症的标志。控制Myc水平的几种重要机制之一涉及其依赖磷酸化的蛋白水解作用。先前的研究表明,保守的Myc Box I序列中糖原合酶激酶3β(GSK3β)将苏氨酸58磷酸化,导致泛素连接酶Fbw7-SCF复合物结合,随后发生泛素化和蛋白酶体介导的Myc降解。在这里,我们显示在几种细胞类型中Myc的诱导与GSK3β的抑制性丝氨酸9磷酸化的丧失及其激酶活性的增加有关。 Myc诱导的丝氨酸9磷酸化的减少被冈田酸阻止,冈田酸是蛋白磷酸酶2A(PP2A)的抑制剂。因此,我们检查了PP2A复合物的成分,发现在调节性B56亚基中,只有ppp2r5d基因的启动子(编码B56δ亚型)被Myc直接结合并以E-box依赖的方式被转录激活。此外,我们发现B56δ与GSK3β和Myc都缔合,导致Myc苏氨酸58磷酸化,这是公认的泛素化和降解信号。此外,B56δ的过表达或siRNA介导的敲低分别导致Myc降解加快或受阻。总之,我们的数据表明Myc通过涉及PP2A和GSK3β的负反馈途径来限制自身的丰度。

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