Albrecht Laura, Wilson Katie A, Wetmore Stacey D
Department of Chemistry and Biochemistry, University of Lethbridge, 4401 University Drive West, Lethbridge Alberta, AB T1K 3M4, Canada.
Molecules. 2016 Jun 23;21(7):822. doi: 10.3390/molecules21070822.
Expanded (x) and widened (y) deoxyribose nucleic acids (DNA) have an extra benzene ring incorporated either horizontally (xDNA) or vertically (yDNA) between a natural pyrimidine base and the deoxyribose, or between the 5- and 6-membered rings of a natural purine. Far-reaching applications for (x,y)DNA include nucleic acid probes and extending the natural genetic code. Since modified nucleobases must encode information that can be passed to the next generation in order to be a useful extension of the genetic code, the ability of translesion (bypass) polymerases to replicate modified bases is an active area of research. The common model bypass polymerase DNA polymerase IV (Dpo4) has been previously shown to successfully replicate and extend past a single modified nucleobase on a template DNA strand. In the current study, molecular dynamics (MD) simulations are used to evaluate the accommodation of expanded/widened nucleobases in the Dpo4 active site, providing the first structural information on the replication of (x,y)DNA. Our results indicate that the Dpo4 catalytic (palm) domain is not significantly impacted by the (x,y)DNA bases. Instead, the template strand is displaced to accommodate the increased C1'-C1' base-pair distance. The structural insights unveiled in the present work not only increase our fundamental understanding of Dpo4 replication, but also reveal the process by which Dpo4 replicates (x,y)DNA, and thereby will contribute to the optimization of high fidelity and efficient polymerases for the replication of modified nucleobases.
扩展型(x)和加宽型(y)脱氧核糖核酸(DNA)在天然嘧啶碱基与脱氧核糖之间,或者在天然嘌呤的五元环和六元环之间,水平方向(xDNA)或垂直方向(yDNA)并入了一个额外的苯环。(x,y)DNA有着广泛的应用,包括核酸探针以及扩展天然遗传密码。由于修饰的核碱基必须编码能够传递给下一代的信息,才能成为遗传密码的有效扩展,跨损伤(跨越)聚合酶复制修饰碱基的能力是一个活跃的研究领域。常见的模型跨损伤聚合酶DNA聚合酶IV(Dpo4)此前已被证明能够在模板DNA链上成功复制并延伸越过单个修饰的核碱基。在当前的研究中,分子动力学(MD)模拟被用于评估扩展/加宽核碱基在Dpo4活性位点的容纳情况,提供了关于(x,y)DNA复制的首个结构信息。我们的结果表明,Dpo4催化(手掌)结构域并未受到(x,y)DNA碱基的显著影响。相反,模板链发生位移以适应增加的C1'-C1'碱基对间距。本研究揭示的结构见解不仅增进了我们对Dpo4复制的基本理解,还揭示了Dpo4复制(x,y)DNA的过程,从而将有助于优化用于复制修饰核碱基的高保真和高效聚合酶。