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Revealing Three Stages of DNA-Cisplatin Reaction by a Solid-State Nanopore

机译:通过固态纳米孔揭示DNA-顺铂反应的三个阶段

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The dynamic structural behavior in DNA due to interaction with cisplatin is essential for the functionality of platinum-based anti-cancer drugs. Here we report a novel method to monitor the interaction progress in DNA-cisplatin reaction in real time with a solid-state nanopore. The interaction processes are found to be well elucidated by the evolution of the capture rate of DNA-cisplatin complex, which is defined as the number of their translocation events through the nanopore in unit time. In the first stage, the capture rate decreases rapidly due to DNA discharging as the positive-charged hydrated cisplatin molecules initially bond to the negative-charged DNA and form mono-adducts. In the second stage, by forming di-adducts, the capture rate increases as DNA molecules are softened, appears as the reduced persistence length of the DNA-cisplatin adducts. In the third stage, the capture rate decreases again as a result of DNA aggregation. Our study demonstrates a new single-molecule tool in exploring dynamic behaviors during drug-DNA reactions and may have future application in fast drug screening.
机译:由于与顺铂相互作用,DNA中的动态结构行为对于基于铂的抗癌药物的功能至关重要。在这里,我们报告了一种新颖的方法,以实时监测与固态纳米孔的DNA-顺铂反应的相互作用进程。 DNA-顺铂复合物的捕获率的演变很好地阐明了相互作用过程,DNA-顺铂复合物的捕获率定义为单位时间内它们通过纳米孔的移位事件的数量。在第一阶段,由于DNA放电,捕获率迅速降低,因为带正电荷的水合顺铂分子最初会与带负电荷的DNA结合并形成单加合物。在第二阶段,通过形成二加合物,捕获率随着DNA分子的软化而增加,表现为DNA-顺铂加合物的保留长度减少。在第三阶段,由于DNA聚集,捕获率再次降低。我们的研究表明了一种新的单分子工具,可用于探索药物-DNA反应过程中的动态行为,并且可能在快速药物筛选中具有未来的应用。

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