Department of Microbiology and Molecular Genetics, The Markey Center for Molecular Genetics, The University of Vermont, Burlington, Vermont 05405-0068.
Department of Chemistry, University of Utah, Salt Lake City, Utah 84112-0850.
J Biol Chem. 2013 Sep 20;288(38):27263-27272. doi: 10.1074/jbc.M113.479055. Epub 2013 Aug 7.
The telomeric DNA of vertebrates consists of d(TTAGGG)n tandem repeats, which can form quadruplex DNA structures in vitro and likely in vivo. Despite the fact that the G-rich telomeric DNA is susceptible to oxidation, few biochemical studies of base excision repair in telomeric DNA and quadruplex structures have been done. Here, we show that telomeric DNA containing thymine glycol (Tg), 8-oxo-7,8-dihydroguanine (8-oxoG), guanidinohydantoin (Gh), or spiroiminodihydantoin (Sp) can form quadruplex DNA structures in vitro. We have tested the base excision activities of five mammalian DNA glycosylases (NEIL1, NEIL2, mNeil3, NTH1, and OGG1) on these lesion-containing quadruplex substrates and found that only mNeil3 had excision activity on Tg in quadruplex DNA and that the glycosylase exhibited a strong preference for Tg in the telomeric sequence context. Although Sp and Gh in quadruplex DNA were good substrates for mNeil3 and NEIL1, none of the glycosylases had activity on quadruplex DNA containing 8-oxoG. In addition, NEIL1 but not mNeil3 showed enhanced glycosylase activity on Gh in the telomeric sequence context. These data suggest that one role for Neil3 and NEIL1 is to repair DNA base damages in telomeres in vivo and that Neil3 and Neil1 may function in quadruplex-mediated cellular events, such as gene regulation via removal of damaged bases from quadruplex DNA.
脊椎动物的端粒 DNA 由 d(TTAGGG)n 串联重复组成,它可以在体外形成四链体 DNA 结构,并且可能在体内形成。尽管富含 G 的端粒 DNA 容易氧化,但对端粒 DNA 和四链体结构中的碱基切除修复的生化研究很少。在这里,我们表明含有胸腺嘧啶二醇(Tg)、8-氧代-7,8-二氢鸟嘌呤(8-oxoG)、胍基尿嘧啶(Gh)或螺旋亚氨基二氢嘧啶(Sp)的端粒 DNA 可以在体外形成四链体 DNA 结构。我们已经测试了五种哺乳动物 DNA 糖苷酶(NEIL1、NEIL2、mNeil3、NTH1 和 OGG1)对这些含有损伤的四链体底物的碱基切除活性,发现只有 mNeil3 在四链体 DNA 中的 Tg 上具有切除活性,并且糖苷酶在端粒序列背景中对 Tg 表现出强烈的偏好。尽管 Sp 和 Gh 在四链体 DNA 中是 mNeil3 和 NEIL1 的良好底物,但没有一种糖苷酶对含有 8-oxoG 的四链体 DNA 具有活性。此外,NEIL1 而不是 mNeil3 在端粒序列背景中显示出对 Gh 的增强的糖苷酶活性。这些数据表明,mNeil3 和 NEIL1 的一个作用是在体内修复端粒中的 DNA 碱基损伤,并且 mNeil3 和 NEIL1 可能在四链体介导的细胞事件中发挥作用,例如通过从四链体 DNA 中去除受损碱基来调节基因。