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Structural Insights into Conformation Differences between DNA/TNA and RNA/TNA Chimeric Duplexes

机译:DNA / TNA和RNA / TNA嵌合双链体之间构象差异的结构见解

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摘要

Threose nucleic acid (TNA) is an artificial genetic polymer capable of heredity and evolution, and is studied in the context of RNA chemical etiology. It has a four-carbon threose backbone in place of the five-carbon ribose of natural nucleic acids, yet forms stable antiparallel complementary Watson-Crick homoduplexes and heteroduplexes with DNA and RNA. TNA base-pairs more favorably with RNA than with DNA but the reason is unknown. Here, we employed NMR, ITC, UV, and CD to probe the structural and dynamic properties of heteroduplexes of RNA/TNA and DNA/TNA. The results indicate that TNA templates the structure of heteroduplexes, thereby forcing an A-like helical geometry. NMR measurement of kinetic and thermodynamic parameters for individual base pair opening events reveal unexpected asymmetric breathing fluctuations of the DNA/TNA helix. The results suggest that DNA is unable to fully adapt to the conformational constraints of the rigid TNA backbone and that nucleic acid breathing dynamics are determined from both backbone and base contributions.
机译:苏糖核酸(TNA)是一种能够遗传和进化的人工遗传聚合物,在RNA化学病因学的背景下进行了研究。它具有四碳苏糖骨架,可代替天然核酸的五碳核糖,但与DNA和RNA形成稳定的反平行互补Watson-Crick同双链和异双链。与DNA相比,RNA的TNA碱基对更有利,但原因尚不清楚。在这里,我们使用NMR,ITC,UV和CD来探测RNA / TNA和DNA / TNA异源双链体的结构和动力学特性。结果表明,TNA对异源双链体的结构进行模板化,从而强制形成A形螺旋几何。单个碱基对打开事件的动力学和热力学参数的NMR测量揭示了DNA / TNA螺旋的意外呼吸不对称波动。结果表明,DNA无法完全适应刚性TNA骨架的构象约束,并且核酸呼吸动力学是由骨架和碱基共同决定的。

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