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磷酸化调节寡聚状态的转变控制 Sae2 核酸修复酶的活性。

Phosphorylation-regulated transitions in an oligomeric state control the activity of the Sae2 DNA repair enzyme.

机构信息

The Howard Hughes Medical Institute, Department of Molecular Biosciences, and Institute for Cellular and Molecular Biology, The University of Texas at Austin, Austin, Texas, USA.

出版信息

Mol Cell Biol. 2014 Mar;34(5):778-93. doi: 10.1128/MCB.00963-13. Epub 2013 Dec 16.

Abstract

In the DNA damage response, many repair and signaling molecules mobilize rapidly at the sites of DNA double-strand breaks. This network of immediate responses is regulated at the level of posttranslational modifications that control the activation of DNA processing enzymes, protein kinases, and scaffold proteins to coordinate DNA repair and checkpoint signaling. Here we investigated the DNA damage-induced oligomeric transitions of the Sae2 protein, an important enzyme in the initiation of DNA double-strand break repair. Sae2 is a target of multiple phosphorylation events, which we identified and characterized in vivo in the budding yeast Saccharomyces cerevisiae. Both cell cycle-dependent and DNA damage-dependent phosphorylation sites in Sae2 are important for the survival of DNA damage, and the cell cycle-regulated modifications are required to prime the damage-dependent events. We found that Sae2 exists in the form of inactive oligomers that are transiently released into smaller active units by this series of phosphorylations. DNA damage also triggers removal of Sae2 through autophagy and proteasomal degradation, ensuring that active Sae2 is present only transiently in cells. Overall, this analysis provides evidence for a novel type of protein regulation where the activity of an enzyme is controlled dynamically by posttranslational modifications that regulate its solubility and oligomeric state.

摘要

在 DNA 损伤反应中,许多修复和信号分子会迅速在 DNA 双链断裂部位聚集。这种即时反应网络受到翻译后修饰的调控,这些修饰控制着 DNA 处理酶、蛋白激酶和支架蛋白的激活,从而协调 DNA 修复和检查点信号。在这里,我们研究了 Sae2 蛋白在 DNA 双链断裂修复起始中的寡聚转变,Sae2 是一种重要的酶。Sae2 是多种磷酸化事件的靶标,我们在酿酒酵母中进行了体内鉴定和特征分析。Sae2 中的细胞周期依赖性和 DNA 损伤依赖性磷酸化位点对于 DNA 损伤的存活都很重要,而细胞周期调控的修饰对于引发损伤依赖性事件是必需的。我们发现,Sae2 以无活性寡聚体的形式存在,通过一系列磷酸化反应,这些寡聚体被短暂释放为较小的活性单元。DNA 损伤还通过自噬和蛋白酶体降解触发 Sae2 的去除,以确保细胞中仅短暂存在活性 Sae2。总的来说,这项分析为一种新型的蛋白质调控提供了证据,即酶的活性通过翻译后修饰来动态调控,这些修饰调节其可溶性和寡聚状态。

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