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On the molecular basis of uracil recognition in DNA: comparative study of T-A versus U-A structure, dynamics and open base pair kinetics

机译:基于DNA中尿嘧啶识别的分子基础:T-A与U-A结构,动力学和开放碱基对动力学的比较研究

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摘要

Uracil (U) can be found in DNA as a mismatch paired either to adenine (A) or to guanine (G). Removal of U from DNA is performed by a class of enzymes known as uracil-DNA-glycosylases (UDG). Recent studies suggest that recognition of U-A and U-G mismatches by UDG takes place via an extra-helical mechanism. In this work, we use molecular dynamics simulations to analyze the structure, dynamics and open base pair kinetics of U-A base pairs relative to their natural T-A counterpart in 12 dodecamers. Our results show that the presence of U does not alter the local conformation of B-DNA. Breathing dynamics and base pair closing kinetics are only weakly dependent on the presence of U versus T, with open T-A and U-A pairs lifetimes in the nanosecond timescale. Additionally, we observed spontaneous base flipping in U-A pairs. We analyze the structure and dynamics for this event and compare the results to available crystallographic data of open base pair conformations. Our results are in agreement with both structural and kinetic data derived from NMR imino proton exchange measurements, providing the first detailed description at the molecular level of elusive events such as spontaneous base pair opening and flipping in mismatched U-A sequences in DNA. Based on these results, we propose that base pair flipping can occur spontaneously at room temperature via a 3-step mechanism with an open base pair intermediate. Implications for the molecular basis of U recognition by UDG are discussed.
机译:尿嘧啶(U)可以在DNA中发现与腺嘌呤(A)或鸟嘌呤(G)错配的错配。通过称为尿嘧啶-DNA-糖基化酶(UDG)的一类酶从DNA中去除U。最近的研究表明,UDG对U-A和U-G错配的识别是通过螺旋外机制进行的。在这项工作中,我们使用分子动力学模拟来分析12个十二聚体中U-A碱基对相对于其天然T-A对应物的结构,动力学和开放碱基对动力学。我们的结果表明,U的存在不会改变B-DNA的局部构象。呼吸动力学和碱基对闭合动力学仅微弱地依赖于U对T的存在,开放的T-A和U-A对的寿命为纳秒级。此外,我们观察到U-A对中的自发碱基翻转。我们分析该事件的结构和动力学,并将结果与​​开放碱基对构象的可用晶体学数据进行比较。我们的结果与从NMR亚氨基质子交换测量获得的结构和动力学数据均相符,从而在分子水平(如自发碱基对打开和DNA中错配的U-A序列翻转)的分子一级提供了详细的描述。基于这些结果,我们提出碱基对翻转可以在室温下通过带有开放式碱基对中间体的3步机制自发发生。讨论了UDG识别U的分子基础的意义。

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