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Correlation dynamics and enhanced signals for the identification of serial biomolecules and DNA bases

机译:相关动力学和增强信号,用于鉴定系列生物分子和DNA碱基

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Nanopore-based sequencing has demonstrated a significant potential for the development of fast, accurate, and cost-efficient fingerprinting techniques for next generation molecular detection and sequencing. We propose a specific multilayered graphene-based nanopore device architecture for the recognition of single biomolecules. Molecular detection and analysis can be accomplished through the detection of transverse currents as the molecule or DNA base translocates through the nanopore. To increase the overall signal-to-noise ratio and the accuracy, we implement a new ‘multi-point cross-correlation’technique for identification of DNA bases or other molecules on the single molecular level. We demonstrate that the cross-correlations between each nanopore will greatly enhance the transverse current signal for each molecule. We implement first-principles transport calculations for DNA bases surveyed across a multilayered graphene nanopore system to illustrate the advantages of the proposed geometry. A time-series analysis of the cross-correlation functions illustrates the potential of this method for enhancing the signal-to-noise ratio. This work constitutes a significant step forward in facilitating fingerprinting of single biomolecules using solid state technology.
机译:基于纳米孔的测序已显示出开发用于下一代分子检测和测序的快速,准确和经济高效的指纹技术的巨大潜力。我们提出了一种特定的基于石墨烯的多层纳米孔设备架构,用于识别单个生物分子。当分子或DNA碱基易位通过纳米孔时,可以通过检测横向电流来完成分子检测和分析。为了提高整体信噪比和准确性,我们实施了一种新的“多点互相关”技术,可在单分子水平上鉴定DNA碱基或其他分子。我们证明每个纳米孔之间的互相关将大大增强每个分子的横向电流信号。我们对在多层石墨烯纳米孔系统中调查的DNA碱基实施第一性原理的运输计算,以说明所提出的几何结构的优点。互相关函数的时间序列分析说明了该方法增强信噪比的潜力。这项工作构成了使用固态技术促进单个生物分子指纹识别的重要一步。

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