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Exploded view of higher order G-quadruplex structures through click-chemistry assisted single-molecule mechanical unfolding

机译:通过点击化学辅助单分子机械展开,通过点击化学辅助单分子展开分解视图

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Due to the long-range nature of high-order interactions between distal components in a biomolecule, transition dynamics of tertiary structures is often too complex to profile using conventional methods. Inspired by the exploded view in mechanical drawing, here, we used laser tweezers to mechanically dissect high-order DNA structures into two constituting G-quadruplexes in the promoter of the human telomerase reverse transcriptase (hTERT) gene. Assisted with click-chemistry coupling, we sandwiched one G-quadruplex with two dsDNA handles while leaving the other unit free. Mechanical unfolding through these handles revealed transition dynamics of the targeted quadruplex in a native environment, which is named as native mechanical segmentation (NMS). Comparison between unfolding of an NMS construct and that of truncated G-quadruplex constructs revealed a quadruplex-quadruplex interaction with 2 kcal/mol stabilization energy. After mechanically targeting the two G-quadruplexes together, the same interaction was observed during the first unfolding step. The unfolding then proceeded through disrupting the weaker G-quadruplex at the 5'-end, followed by the stronger G-quadruplex at the 3'-end via various intermediates. Such a pecking order in unfolding well reflects the hierarchical nature of nucleic acid structures. With surgery-like precisions, we anticipate this NMS approach offers unprecedented perspective to decipher dynamic transitions in complex biomacromolecules.
机译:由于生物分子中远端成分之间的高阶相互作用的远程性质,使用常规方法通常过于复杂的第三结构的过渡动态。通过在机械绘图中的分解视图的启发,这里,我们使用激光镊子将高阶DNA结构机械地将高阶DNA结构置于构成的人端粒酶逆转录酶(HTERT)基因的启动子中构成G-quadwrupleases。协助点击化学耦合,我们将一个G-Quadruple与两个DSDNA手柄夹在一起,同时免费留下另一个单位。通过这些手柄的机械展开,在本机环境中揭示了目标Quadruplex的过渡动态,该转换动态被命名为本机机械分割(NMS)。 NMS构建体的展开与截短的G-四逆转构建体之间的比较揭示了与2kcal / mol稳定能量的四驱 - 四边形相互作用。在将两个G - 四翻转在一起进行机械上靶向后,在第一展开步骤期间观察到相同的相互作用。然后展开展开通过破坏5'-末端的弱G-quadreplex,然后通过各种中间体在3'-End处的较强的G-quadruplex。在展开井中的这种啄食顺序反映了核酸结构的层次性质。通过手术类似的精度,我们预计该NMS方法提供了前所未有的视角,以破译复杂生物致摩托的动态转变。

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