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首页> 外文期刊>Biopolymers: Original Research on Biomolecules and Biomolecular Assemblies >Influence of a cis,syn-Cyclobutane Pyrimidine Dimer Damage on DNA Conformation Studied by Molecular Dynamics Simulations
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Influence of a cis,syn-Cyclobutane Pyrimidine Dimer Damage on DNA Conformation Studied by Molecular Dynamics Simulations

机译:分子动力学模拟研究顺式,顺式-环丁烷嘧啶二聚体损伤对DNA构象的影响

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摘要

The photo-induced formation of cis-syn-cyclobutane pyrimidine dimers (CPD) is a highly mutagenic and cancerogenic DNA lesion. In bacteria photolyases can efficiently reverse the dimer formation employing a light-driven reaction after looping out the CPD damaged bases into the enzyme active site. The exact mechanism how the repair enzyme identifies a damaged site within a large surplus of undamaged DNA is not fully understood. The CPD damage may alter the DNA structure and dynamics already in the absence of the repair enzyme which can facilitate the initial binding of a photolyase repair enzyme. To characterize the effect of a CPD damage, extensive comparative molecular dynamics (MD) simulations on duplex DNA with central regular or CPD damaged nucleotides were performed supplemented with simulations of the DNA-photolyase complex. Although no spontaneous flipping out transitions of the damaged bases were observed, the simulations showed significant differences in the conformational states of regular and CPD damage DNA. The isolated damaged DNA adopted transient conformations which resembled the global shape of the repair enzyme bound conformation more closely compared to regular B-DNA. In particular, these conformational changes were observed in most of helical and structural parameters where the protein bound DNA differs drastically from regular B-DNA. It is likely that the transient overlap of isolated DNA with the enzyme bound DNA conformation plays a decisive role for the specific and rapid initial recognition by the repair enzyme prior to the looping out process of the damaged DNA. (C) 2014 Wiley Periodicals, Inc.
机译:顺式-顺式-环丁烷嘧啶二聚体(CPD)的光诱导形成是高度致突变和致癌的DNA损伤。在细菌中,在将CPD受损的碱基循环到酶活性位点后,利用光驱动反应,光裂解酶可以有效地逆转二聚体的形成。修复酶如何识别大量未损坏的DNA内的受损位点的确切机制尚不完全清楚。在没有修复酶的情况下,CPD损伤可能已经改变了DNA结构和动力学,这可以促进光解酶修复酶的初始结合。为了表征CPD损伤的影响,对带有中央规则或CPD损伤核苷酸的双链DNA进行了广泛的比较分子动力学(MD)模拟,并附加了DNA-光解酶复合物的模拟。尽管未观察到受损碱基的自发翻转跃迁,但模拟显示常规和CPD受损DNA的构象状态存在显着差异。分离的受损DNA采用瞬时构象,与常规的B-DNA相比,其更类似于修复酶结合构象的整体形状。特别是,在大多数螺旋和结构参数中观察到了这些构象变化,其中结合蛋白质的DNA与常规B-DNA截然不同。分离的DNA与酶结合的DNA构象的瞬时重叠可能对于修复酶在受损DNA的循环过程之前的特异性和快速的初始识别起决定性作用。 (C)2014威利期刊公司

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