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芽殖酵母 Rad51:磷酸化和固有结构无序如何调节同源重组和蛋白质平衡的典范。

Budding yeast Rad51: a paradigm for how phosphorylation and intrinsic structural disorder regulate homologous recombination and protein homeostasis.

机构信息

Institute of Molecular Biology, Academia Sinica, Taipei, Taiwan.

出版信息

Curr Genet. 2021 Jun;67(3):389-396. doi: 10.1007/s00294-020-01151-2. Epub 2021 Jan 12.

Abstract

The RecA-family recombinase Rad51 is the central player in homologous recombination (HR), the faithful pathway for repairing DNA double-strand breaks (DSBs) during both mitosis and meiosis. The behavior of Rad51 protein in vivo is fine-tuned via posttranslational modifications conducted by multiple protein kinases in response to cell cycle cues and DNA lesions. Unrepaired DSBs and ssDNA also activate Mec1 and Tel1 family kinases to initiate the DNA damage response (DDR) that safeguards genomic integrity. Defects in HR and DDR trigger genome instability and result in cancer predisposition, infertility, developmental defects, neurological diseases or premature aging. Intriguingly, yeast Mec1- and Tel1-dependent phosphorylation promotes Rad51 protein stability during DDR, revealing how Mec1 can alleviate proteotoxic stress. Moreover, Mec1- and Tel1-dependent phosphorylation also occurs on DDR-unrelated proteins, suggesting that Mec1 and Tel1 have a DDR-independent function in protein homeostasis. In this minireview, we first describe how human and budding yeast Rad51 are phosphorylated by multiple protein kinases at different positions to promote homology-directed DNA repair and recombination (HDRR). Then, we discuss recent findings showing that intrinsic structural disorder and Mec1/Tel1-dependent phosphorylation are coordinated in yeast Rad51 to regulate both HR and protein homeostasis.

摘要

RecA 家族重组酶 Rad51 是同源重组 (HR) 的核心参与者,是有丝分裂和减数分裂中修复 DNA 双链断裂 (DSB) 的忠实途径。Rad51 蛋白在体内的行为通过多种蛋白激酶进行的翻译后修饰来微调,以响应细胞周期线索和 DNA 损伤。未修复的 DSB 和单链 DNA 还会激活 Mek1 和 Tel1 家族激酶,启动 DNA 损伤反应 (DDR),以保护基因组完整性。HR 和 DDR 的缺陷会引发基因组不稳定,导致癌症易感性、不育、发育缺陷、神经疾病或过早衰老。有趣的是,酵母 Mek1 和 Tel1 依赖性磷酸化在 DDR 期间促进 Rad51 蛋白稳定性,揭示了 Mek1 如何缓解蛋白毒性应激。此外,DDR 无关蛋白上也发生 Mek1 和 Tel1 依赖性磷酸化,表明 Mek1 和 Tel1 在蛋白质稳态中具有 DDR 独立的功能。在这篇综述中,我们首先描述了人类和 budding 酵母 Rad51 如何被多种蛋白激酶在不同位置磷酸化,以促进同源定向 DNA 修复和重组 (HDRR)。然后,我们讨论了最近的发现,表明内在结构无序和 Mek1/Tel1 依赖性磷酸化在酵母 Rad51 中协调,以调节 HR 和蛋白质稳态。

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