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Modeling single-molecule stochastic transport for DNA exo-sequencing in nanopore sensors

机译:纳米孔传感器DNA外序的单分子随机转换

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摘要

We present a simulation framework for computing the probability that a single molecule reaches the recognition element in a nanopore sensor. The model consists of the Langevin equation for the diffusive motion of small particles driven by external forces and the Poisson?Nernst?Planck?Stokes equations to compute these forces. The model is applied to examine DNA exo-sequencing in ?-hemolysin, whose practicability depends on whether isolated DNA monomers reliably migrate into the channel in their correct order. We find that, at moderate voltage, migration fails in the majority of trials if the exonuclease which releases monomers is located farther than 1 nm above the pore entry. However, by tuning the pore to have a higher surface charge, applying a high voltage of 1 V and ensuring the exonuclease stays close to the channel, success rates of over 95% can be achieved.
机译:我们提出了一种计算单个分子在纳米孔传感器中达到识别元件的概率的仿真框架。 该模型包括由外力和泊松驱动的小颗粒的扩散运动的Langevin方程组成,泊松?普通?普朗克?Stokes方程来计算这些力量。 该模型用于检查在α-羟胺中的DNA外部测序,其实用性取决于分离的DNA单体是否可靠地以其正确的顺序迁移到通道中。 我们发现,如果释放单体的外切核酸酶位于孔隙入口上方更远的外切核酸酶,则在大多数试验中,迁移失败。 然而,通过调谐孔以具有更高的表面电荷,施加1V的高电压并确保外切核酸酶停留在通道接近,可以实现超过95%的成功率。

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