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XPF蛋白的螺旋-发夹-螺旋结构域与单链DNA的结合有助于ERCC1-XPF蛋白复合物的底物特异性。

Single-stranded DNA Binding by the Helix-Hairpin-Helix Domain of XPF Protein Contributes to the Substrate Specificity of the ERCC1-XPF Protein Complex.

作者信息

Das Devashish, Faridounnia Maryam, Kovacic Lidija, Kaptein Robert, Boelens Rolf, Folkers Gert E

机构信息

From the Bijvoet Center for Biomolecular Research, Utrecht University, Padualaan 8, 3584 CH Utrecht, The Netherlands and.

the Department of Molecular and Biomedical Sciences, Jožef Stefan Institute, Jamova cesta 39, 1000 Ljubljana, Slovenia.

出版信息

J Biol Chem. 2017 Feb 17;292(7):2842-2853. doi: 10.1074/jbc.M116.747857. Epub 2016 Dec 27.

Abstract

The nucleotide excision repair protein complex ERCC1-XPF is required for incision of DNA upstream of DNA damage. Functional studies have provided insights into the binding of ERCC1-XPF to various DNA substrates. However, because no structure for the ERCC1-XPF-DNA complex has been determined, the mechanism of substrate recognition remains elusive. Here we biochemically characterize the substrate preferences of the helix-hairpin-helix (HhH) domains of XPF and ERCC-XPF and show that the binding to single-stranded DNA (ssDNA)/dsDNA junctions is dependent on joint binding to the DNA binding domain of ERCC1 and XPF. We reveal that the homodimeric XPF is able to bind various ssDNA sequences but with a clear preference for guanine-containing substrates. NMR titration experiments and DNA binding assays also show that, within the heterodimeric ERCC1-XPF complex, XPF specifically recognizes ssDNA. On the other hand, the HhH domain of ERCC1 preferentially binds dsDNA through the hairpin region. The two separate non-overlapping DNA binding domains in the ERCC1-XPF heterodimer jointly bind to an ssDNA/dsDNA substrate and, thereby, at least partially dictate the incision position during damage removal. Based on structural models, NMR titrations, DNA-binding studies, site-directed mutagenesis, charge distribution, and sequence conservation, we propose that the HhH domain of ERCC1 binds to dsDNA upstream of the damage, and XPF binds to the non-damaged strand within a repair bubble.

摘要

核苷酸切除修复蛋白复合物ERCC1-XPF是DNA损伤上游DNA切割所必需的。功能研究为ERCC1-XPF与各种DNA底物的结合提供了见解。然而,由于尚未确定ERCC1-XPF-DNA复合物的结构,底物识别机制仍然难以捉摸。在这里,我们对XPF和ERCC-XPF的螺旋-发夹-螺旋(HhH)结构域的底物偏好进行了生化表征,结果表明,与单链DNA(ssDNA)/双链DNA(dsDNA)连接点的结合依赖于与ERCC1和XPF的DNA结合结构域的联合结合。我们发现同二聚体XPF能够结合各种ssDNA序列,但明显偏好含鸟嘌呤的底物。核磁共振滴定实验和DNA结合分析还表明,在异二聚体ERCC1-XPF复合物中,XPF特异性识别ssDNA。另一方面,ERCC1的HhH结构域通过发夹区域优先结合dsDNA。ERCC1-XPF异二聚体中两个独立且不重叠的DNA结合结构域共同结合到一个ssDNA/dsDNA底物上,从而在损伤去除过程中至少部分地决定了切割位置。基于结构模型、核磁共振滴定、DNA结合研究、定点诱变、电荷分布和序列保守性,我们提出ERCC1的HhH结构域与损伤上游的dsDNA结合,而XPF与修复泡内未损伤的链结合。

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