Cahill Dana, Carney James P
The Radiation Oncology Research Laboratory and The Marlene and Stewart Greenebaum Cancer Center, University of Maryland School of Medicine, Baltimore, MD 21201, USA.
Mutagenesis. 2007 Jul;22(4):269-74. doi: 10.1093/mutage/gem011. Epub 2007 Apr 9.
The Mre11 complex (Mre11-Rad50-Nbs1) is involved in a diverse array of DNA metabolic processes including the response to DNA double-strand breaks (DSBs). The structure of Rad50 plays a key role in the DNA-binding and end-bridging activity of the complex. An interesting feature within the central portion of the Rad50 protein is the Rad50 hook region that is defined by the highly conserved CXXC motif. The structure of the Pyrococcus furiosus Rad50 hook region revealed an intermolecular dimerization of Rad50 through the coordination of a zinc ion by the four cysteines. Biochemical and genetic analysis in Saccharomyces cerevisiae have shown that mutations in the conserved cysteines impact all functions of the Mre11 complex including interaction with Mre11, increased sensitivity to DSB inducing agents, telomere maintenance and intrachromosomal association. Mutations in the yeast hook domain can lead to increased chromosome fragmentation, suggesting that the hook domain of Rad50 is essential for the tethering of chromosome ends. In this study, we have examined the effects of mutating the key cysteine residues in the hook domain of human Rad50 (hRad50), focusing on the interactions Rad50 has with itself, Mre11 and DNA. Our results reveal that mutation of the conserved cysteine residues abrogates dimerization at the hook domain in hRad50; however, disrupting dimerization at this domain does not appear to impair the interaction of full-length hRad50 with itself and hMre11 or affect DNA-binding activity of the hMre11-Rad50 complex.
Mre11复合物(Mre11-Rad50-Nbs1)参与多种DNA代谢过程,包括对DNA双链断裂(DSB)的反应。Rad50的结构在该复合物的DNA结合和末端桥接活性中起关键作用。Rad50蛋白中央部分的一个有趣特征是由高度保守的CXXC基序定义的Rad50钩状区域。嗜热栖热菌Rad50钩状区域的结构揭示了Rad50通过四个半胱氨酸对锌离子的配位实现分子间二聚化。酿酒酵母中的生化和遗传分析表明,保守半胱氨酸的突变会影响Mre11复合物的所有功能,包括与Mre11的相互作用、对DSB诱导剂的敏感性增加、端粒维持和染色体内关联。酵母钩状结构域的突变可导致染色体片段化增加,这表明Rad50的钩状结构域对于染色体末端的系连至关重要。在本研究中,我们研究了突变人Rad50(hRad50)钩状结构域中关键半胱氨酸残基的影响,重点关注Rad50与自身、Mre11和DNA的相互作用。我们的结果表明,保守半胱氨酸残基的突变消除了hRad50钩状结构域的二聚化;然而,破坏该结构域的二聚化似乎不会损害全长hRad50与自身和hMre11的相互作用,也不会影响hMre11-Rad50复合物的DNA结合活性。