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Langevin dynamics simulation on the translocation of polymer through α-hemolysin pore

机译:Langevin动力学模拟聚合物通过α-溶血素孔的移位

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The forced translocation of a polymer through an α-hemolysin pore under an electrical field is studied using a Langevin dynamics simulation. The α-hemolysin pore is modelled as a connection of a spherical vestibule and a cylindrical β-barrel and polymer-pore attraction is taken into account. The results show that polymer-pore attraction can help the polymer enter the vestibule and the β-barrel as well; however, a strong attraction will slow down the translocation of the polymer through the β-barrel. The mean translocation time for the polymer to thread through the β-barrel increases linearly with the polymer length. By comparing our results with that of a simple pore without a vestibule, we find that the vestibule helps the polymer enter and thread through the β-barrel. Moreover, we find that it is easier for the polymer to thread through the β-barrel if the polymer is located closer to the surface of the vestibule. Some simulation results are explained qualitatively by theoretically analyzing the free-energy landscape of polymer translocation.
机译:使用Langevin动力学模拟研究了在电场作用下聚合物通过α-溶血素孔的强制移位。将α-溶血素孔建模为球形前庭和圆柱形β桶的连接,并考虑了聚合物孔的吸引力。结果表明,聚合物孔的吸引可以帮助聚合物进入前庭和β-桶。但是,强大的吸引力会减慢聚合物通过β桶的转运。聚合物穿入β-桶的平均移位时间随聚合物长度线性增加。通过将我们的结果与没有前庭的简单孔的结果进行比较,我们发现前庭有助于聚合物进入并穿过β-桶。此外,我们发现,如果聚合物位于更靠近前庭表面的位置,则聚合物更容易穿过β-桶。通过理论上分析聚合物易位的自由能态势,定性地解释了一些模拟结果。

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