Cancer Research UK Beatson Institute, Garscube Estate, Switchback Road, Glasgow, G61 1BD, UK.
Institute of Cancer Sciences, University of Glasgow, Glasgow, G61 1QH, UK.
Nat Commun. 2020 Apr 29;11(1):2094. doi: 10.1038/s41467-020-15783-y.
Phosphorylation of MDM2 by ATM upon DNA damage is an important mechanism for deregulating MDM2, thereby leading to p53 activation. ATM phosphorylates multiple residues near the RING domain of MDM2, but the underlying molecular basis for deregulation remains elusive. Here we show that Ser429 phosphorylation selectively enhances the ubiquitin ligase activity of MDM2 homodimer but not MDM2-MDMX heterodimer. A crystal structure of phospho-Ser429 (pS429)-MDM2 bound to E2-ubiquitin reveals a unique 3-helical feature present in MDM2 homodimer that allows pS429 to stabilize the closed E2-ubiquitin conformation and thereby enhancing ubiquitin transfer. In cells Ser429 phosphorylation increases MDM2 autoubiquitination and degradation upon DNA damage, whereas S429A substitution protects MDM2 from auto-degradation. Our results demonstrate that Ser429 phosphorylation serves as a switch to boost the activity of MDM2 homodimer and promote its self-destruction to enable rapid p53 stabilization and resolve a long-standing controversy surrounding MDM2 auto-degradation in response to DNA damage.
ATM 在 DNA 损伤时对 MDM2 的磷酸化是去调控 MDM2 的一个重要机制,从而导致 p53 的激活。ATM 磷酸化 MDM2 的 RING 结构域附近的多个残基,但去调控的潜在分子基础仍然难以捉摸。在这里,我们表明 Ser429 磷酸化选择性地增强 MDM2 同源二聚体的泛素连接酶活性,但不增强 MDM2-MDMX 异源二聚体的活性。一个结合了 E2-泛素的磷酸化 Ser429(pS429)-MDM2 的晶体结构揭示了 MDM2 同源二聚体中存在的一个独特的 3 螺旋特征,该特征允许 pS429 稳定闭合的 E2-泛素构象,从而增强泛素转移。在细胞中,Ser429 磷酸化增加了 DNA 损伤时 MDM2 的自泛素化和降解,而 S429A 取代则保护 MDM2 免受自身降解。我们的结果表明,Ser429 磷酸化是一种开关,可增强 MDM2 同源二聚体的活性,并促进其自身破坏,从而快速稳定 p53,并解决了围绕 DNA 损伤时 MDM2 自身降解的一个长期争议。