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原核生物 Mre11 核酸内切酶的晶体结构揭示了可能在 DNA 修复过程中区分底物的新特征。

Crystal structure of the first eubacterial Mre11 nuclease reveals novel features that may discriminate substrates during DNA repair.

机构信息

Joint Center for Structural Genomics, Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory, Menlo Park, CA 94025, USA.

出版信息

J Mol Biol. 2010 Apr 2;397(3):647-63. doi: 10.1016/j.jmb.2010.01.049. Epub 2010 Feb 1.

Abstract

Mre11 nuclease plays a central role in the repair of cytotoxic and mutagenic DNA double-strand breaks. As X-ray structural information has been available only for the Pyrococcus furiosus enzyme (PfMre11), the conserved and variable features of this nuclease across the domains of life have not been experimentally defined. Our crystal structure and biochemical studies demonstrate that TM1635 from Thermotoga maritima, originally annotated as a putative nuclease, is an Mre11 endo/exonuclease (TmMre11) and the first such structure from eubacteria. TmMre11 and PfMre11 display similar overall structures, despite sequence identity in the twilight zone of only approximately 20%. However, they differ substantially in their DNA-specificity domains and in their dimeric organization. Residues in the nuclease domain are highly conserved, but those in the DNA-specificity domain are not. The structural differences likely affect how Mre11 from different organisms recognize and interact with single-stranded DNA, double-stranded DNA and DNA hairpin structures during DNA repair. The TmMre11 nuclease active site has no bound metal ions, but is conserved in sequence and structure with the exception of a histidine that is important in PfMre11 nuclease activity. Nevertheless, biochemical characterization confirms that TmMre11 possesses both endonuclease and exonuclease activities on single-stranded and double-stranded DNA substrates, respectively.

摘要

Mre11 核酸酶在修复细胞毒性和诱变的 DNA 双链断裂中起着核心作用。由于只有 Pyrococcus furiosus 酶(PfMre11)的 X 射线结构信息可用,因此该核酸酶在生命领域的保守和可变特征尚未通过实验确定。我们的晶体结构和生化研究表明,最初被注释为假定核酸酶的 Thermotoga maritima 的 TM1635 是一种 Mre11 内切/外切核酸酶(TmMre11),这是第一个来自真细菌的此类结构。尽管序列同一性仅在约 20%的暮光区,但 TmMre11 和 PfMre11 显示出相似的整体结构。然而,它们在 DNA 特异性结构域和二聚体组织方面存在很大差异。核酸酶结构域中的残基高度保守,但 DNA 特异性结构域中的残基则不然。结构差异可能会影响来自不同生物体的 Mre11 如何在 DNA 修复过程中识别和与单链 DNA、双链 DNA 和 DNA 发夹结构相互作用。TmMre11 核酸酶活性位点没有结合的金属离子,但在序列和结构上与 PfMre11 核酸酶活性中重要的组氨酸保持一致。尽管如此,生化特征证实 TmMre11 分别在单链和双链 DNA 底物上都具有内切核酸酶和外切核酸酶活性。

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