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首页> 外文期刊>Journal of Molecular Biology >Interplay of posttranslational modifications in Sp1 mediates Sp1 stability during cell cycle progression.
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Interplay of posttranslational modifications in Sp1 mediates Sp1 stability during cell cycle progression.

机译:Sp1的翻译后修饰的相互作用在细胞周期进程中介导Sp1的稳定性。

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摘要

Although Sp1 is known to undergo posttranslational modifications such as phosphorylation, glycosylation, acetylation, sumoylation, and ubiquitination, little is known about the possible interplay between the different forms of Sp1 that may affect its overall levels. It is also unknown whether changes in the levels of Sp1 influence any biological cell processes. Here, we identified RNF4 as the ubiquitin E3 ligase of Sp1. From in vitro and in vivo experiments, we found that sumoylated Sp1 can recruit RNF4 as a ubiquitin E3 ligase that subjects sumoylated Sp1 to proteasomal degradation. Sp1 mapping revealed two ubiquitination-related domains: a small ubiquitin-like modifier in the N-terminus of Sp1(Lys16) and the C-terminus of Sp1 that directly interacts with RNF4. Interestingly, when Sp1 was phosphorylated at Thr739 by c-Jun NH(2)-terminal kinase 1 during mitosis, this phosphorylated form of Sp1 abolished the Sp1-RNF4 interaction. Our results show that, while sumoylated Sp1 subjects to proteasomal degradation, the phosphorylation that occurs during the cell cycle can protect Sp1 from degradation by repressing the Sp1-RNF4 interaction. Thus, we propose that the interplay between posttranslational modifications of Sp1 plays an important role in cell cycle progression and keeps Sp1 at a critical level for mitosis.
机译:尽管已知Sp1会经历翻译后修饰,例如磷酸化,糖基化,乙酰化,磺酰化和泛素化,但对于Sp1不同形式之间可能影响其总体水平的相互作用可能知之甚少。 Sp1水平的变化是否会影响任何生物细胞过程也是未知的。在这里,我们确定RNF4为Sp1的泛素E3连接酶。从体外和体内实验中,我们发现sumoylated Sp1可以募集RNF4作为泛素E3连接酶,使sumoylated Sp1受到蛋白酶体降解。 Sp1映射揭示了两个泛素化相关域:Sp1(Lys16)的N末端和与RNF4直接相互作用的Sp1的C末端的小泛素样修饰子。有趣的是,当Sp1在有丝分裂期间被c-Jun NH(2)-末端激酶1在Thr739磷酸化时,Sp1的这种磷酸化形式消除了Sp1-RNF4的相互作用。我们的结果表明,虽然磺酰化的Sp1发生蛋白酶体降解,但在细胞周期中发生的磷酸化可以通过抑制Sp1-RNF4相互作用来保护Sp1免受降解。因此,我们建议Sp1的翻译后修饰之间的相互作用在细胞周期进程中发挥重要作用,并使Sp1保持在有丝分裂的关键水平。

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