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DNA Damage-Induced Phosphorylation of MdmX at Serine 367 Activates p53 by Targeting MdmX for Mdm2-Dependent Degradation

机译:DNA损伤诱导的MdmX丝氨酸367磷酸化通过靶向MdmX依赖Mdm2依赖性降解激活p53

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摘要

Understanding how p53 activity is regulated is crucial in elucidating mechanisms of cellular defense against cancer. Genetic data indicate that Mdmx as well as Mdm2 plays a major role in maintaining p53 activity at low levels in nonstressed cells. However, biochemical mechanisms of how Mdmx regulates p53 activity are not well understood. Through identification of Mdmx-binding proteins, we found that 14-3-3 proteins are associated with Mdmx. Mdmx harbors a consensus sequence for binding of 14-3-3. Serine 367 (S367) is located within the putative binding sequence for 14-3-3, and its substitution with alanine (S367A) abolishes binding of Mdmx to 14-3-3. Transfection assays indicated that the S367A mutation, in cooperation with Mdm2, enhances the ability of Mdmx to repress the transcriptional activity of p53. The S367A mutant is more resistant to Mdm2-dependent ubiquitination and degradation than wild-type Mdmx, and Mdmx phosphorylated at S367 is preferentially degraded by Mdm2. Several types of DNA damage markedly enhance S367 phosphorylation, coinciding with increased binding of Mdmx to 14-3-3 and accelerated Mdmx degradation. Furthermore, promotion of growth of normal human fibroblasts after introduction of Mdmx is enhanced by the S367 mutation. We propose that Mdmx phosphorylation at S367 plays an important role in p53 activation after DNA damage by triggering Mdm2-dependent degradation of Mdmx.
机译:了解p53活性的调控方式对于阐明细胞防御癌症的机制至关重要。遗传数据表明,Mdmx以及Mdm2在维持非应激细胞低水平的p53活性中起主要作用。但是,关于Mdmx如何调节p53活性的生化机制尚未完全了解。通过鉴定Mdmx结合蛋白,我们发现14-3-3蛋白与Mdmx相关。 Mdmx包含一个结合14-3-3的共有序列。丝氨酸367(S367)位于14-3-3的推定结合序列内,用丙氨酸(S367A)取代可消除Mdmx与14-3-3的结合。转染分析表明,S367A突变与Mdm2协同作用可增强Mdmx抑制p53转录活性的能力。与野生型Mdmx相比,S367A突变体对Mdm2依赖性泛素化和降解的抵抗力更高,并且在S367处磷酸化的Mdmx优先被Mdm2降解。几种类型的DNA损伤显着增强S367磷酸化,这与Mdmx与14-3-3的结合增加以及Mdmx降解加速有关。此外,在引入Mdmx之后,通过S367突变增强了对正常人成纤维细胞生长的促进。我们建议在S367的Mdmx磷酸化在DNA损伤后通过触发Mdm2依赖性Mdmx降解而在p53激活中起重要作用。

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