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Critical roles for the serine 20 but not the serine 15 phosphorylation site and for the polyproline domain in regulating p53 turnover.

机译:丝氨酸20但不是丝氨酸15的磷酸化位点和多脯氨酸结构域在调节p53周转中的关键作用。

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摘要

The p53 tumour suppressor protein is a short-lived transcription factor that becomes stabilized in response to a wide range of cellular stresses. Ubiquitination and the targeting of p53 for degradation by the proteasome are mediated by Mdm2 (mouse double minute clone 2), a negative regulatory partner of p53. Previous studies have suggested that DNA-damage-induced phosphorylation of p53 at key N-terminal sites has a pivotal role in regulating the interaction with Mdm2 but the precise role of phosphorylation of serines 15 and 20 is still unclear. Here we show that replacement of serine 15 and a range of other key N-terminal phosphorylation sites with alanine, which cannot be phosphorylated, has little effect on the ubiquitination and degradation of full-length human p53. In contrast, replacement of serine 20 makes p53 highly sensitive to Mdm2-mediated turnover. These results define distinct roles for serines 15 and 20, two sites previously demonstrated to be dependent on phosphorylation through mechanisms mediated by DNA damage and ATM (ataxia telangiectasia mutated). We also show that the polyproline region of p53, a domain that has a key role in p53-induced apoptosis, exerts a critical influence over the Mdm2-mediated turnover of p53.
机译:p53肿瘤抑制蛋白是一种短暂的转录因子,可响应各种细胞应激而变得稳定。泛素化和蛋白酶体降解p53的目标是由Mdm2(小鼠双分钟克隆2)介导的,它是p53的负调控伴侣。先前的研究表明,DNA损伤诱导的关键N末端位点p53的磷酸化在调节与Mdm2的相互作用中起着关键作用,但丝氨酸15和20的磷酸化的确切作用仍不清楚。在这里,我们表明无法被磷酸化的丙氨酸取代丝氨酸15和其他关键N末端磷酸化位点的范围对全长人p53的泛素化和降解几乎没有影响。相反,丝氨酸20的替换使p53对Mdm2介导的周转高度敏感。这些结果为丝氨酸15和20定义了不同的作用,这两个位点以前被证明是通过DNA损伤和ATM(毛细血管扩张性共济失调突变)介导的机制依赖于磷酸化。我们还显示,p53的多脯氨酸区域在p53诱导的细胞凋亡中具有关键作用,对Mdm2介导的p53转换产生关键影响。

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