Cullinan D, Johnson F, de los Santos C
Department of Pharmacological Sciences, State University of New York at Stony Brook, Stony Brook, NY, 11794-8651, USA.
J Mol Biol. 2000 Feb 25;296(3):851-61. doi: 10.1006/jmbi.1999.3490.
Lipid peroxidation products, as well as the metabolic products of vinyl chloride, react with cellular DNA producing the mutagenic adduct 3,N(4)-etheno-2'-deoxycytidine (epsilondC), along with several other exocyclic derivatives. High-resolution NMR spectroscopy and restrained molecular dynamics simulations were used to establish the solution structure of an 11-mer duplex containing an epsilondC.dC base-pair at its center. The NMR data suggested a regular right-handed helical structure having all residues in the anti orientation around the glycosydic torsion angle and Watson-Crick alignments for all canonical base-pairs of the duplex. Restrained molecular dynamics generated a three-dimensional model in excellent agreement with the spectroscopic data. The (epsilondC. dC)-duplex structure is a regular right-handed helix with a slight bend at the lesion site and no severe distortions of the sugar-phosphate backbone. The epsilondC adduct and its partner dC were displaced towards opposite grooves of the helix, resulting in a lesion-containing base-pair that was highly sheared but stabilized to some degree by the formation of a single hydrogen bond. Such a sheared base-pair alignment at the lesion site was previously observed for epsilondC.dG and epsilondC.T duplexes, and was also present in the crystal structures of duplexes containing dG.T and dG. U mismatches. These observations suggest the existence of a substrate structural motif that may be recognized by specific DNA glycosylases during the process of base excision repair.
脂质过氧化产物以及氯乙烯的代谢产物与细胞DNA发生反应,生成诱变加合物3,N(4)-乙烯基-2'-脱氧胞苷(εdC)以及其他几种环外衍生物。利用高分辨率核磁共振光谱和受限分子动力学模拟来确定一个11聚体双链体的溶液结构,该双链体在其中心含有一个εdC·dC碱基对。核磁共振数据表明其具有规则的右手螺旋结构,所有残基在糖苷扭转角周围均处于反式构象,且双链体的所有标准碱基对均为沃森-克里克配对。受限分子动力学生成了一个与光谱数据高度吻合的三维模型。(εdC·dC)-双链体结构是一个规则的右手螺旋,在损伤位点有轻微弯曲,糖-磷酸骨架没有严重扭曲。εdC加合物及其配对的dC向螺旋的相反凹槽位移,形成一个含损伤的碱基对,该碱基对高度错配,但通过形成一个氢键在一定程度上得以稳定。之前在εdC·dG和εdC·T双链体中也观察到损伤位点处存在这种错配的碱基对排列,并且在含有dG·T和dG·U错配的双链体晶体结构中也存在。这些观察结果表明存在一种底物结构基序,在碱基切除修复过程中可能被特定的DNA糖基化酶识别。