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Conformational transitions and stop-and-go nanopore transport of single-stranded DNA on charged graphene

机译:带电石墨烯上单链DNA的构象转变和走走停停的纳米孔传输

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摘要

Control over interactions with biomolecules holds the key to applications of graphene in biotechnology. One such application is nanopore sequencing, where a DNA molecule is electrophoretically driven through a graphene nanopore. Here we investigate how interactions of single-stranded DNA and a graphene membrane can be controlled by electrically biasing the membrane. The results of our molecular dynamics simulations suggest that electric charge on graphene can force a DNA homopolymer to adopt a range of strikingly different conformations. The conformational response is sensitive to even very subtle nucleotide modifications, such as DNA methylation. The speed of DNA motion through a graphene nanopore is strongly affected by the graphene charge: a positive charge accelerates the motion, whereas a negative charge arrests it. As a possible application of the effect, we demonstrate stop-and-go transport of DNA controlled by the charge of graphene. Such on-demand transport of DNA is essential for realizing nanopore sequencing.
机译:控制与生物分子的相互作用是石墨烯在生物技术中应用的关键。一种这样的应用是纳米孔测序,其中DNA分子被电泳驱动通过石墨烯纳米孔。在这里,我们研究如何通过电偏压膜来控制单链DNA和石墨烯膜的相互作用。我们的分子动力学模拟结果表明,石墨烯上的电荷可以迫使DNA均聚物采用一系列截然不同的构象。构象响应甚至对非常微妙的核苷酸修饰(例如DNA甲基化)都敏感。穿过石墨烯纳米孔的DNA运动速度受石墨烯电荷的强烈影响:正电荷会加速运动,而负电荷会阻止运动。作为该效应的可能应用,我们证明了由石墨烯电荷控制的DNA的走走停停运输。 DNA的这种按需运输对于实现纳米孔测序至关重要。

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