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The Nucleotide Capture Region of Alpha Hemolysin: Insights into Nanopore Design for DNA Sequencing from Molecular Dynamics Simulations

机译:α溶血素的核苷酸捕获区域:分子动力学模拟对DNA测序的纳米孔设计的见解。

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摘要

Nanopore technology for DNA sequencing is constantly being refined and improved. In strand sequencing a single strand of DNA is fed through a nanopore and subsequent fluctuations in the current are measured. A major hurdle is that the DNA is translocated through the pore at a rate that is too fast for the current measurement systems. An alternative approach is “exonuclease sequencing”, in which an exonuclease is attached to the nanopore that is able to process the strand, cleaving off one base at a time. The bases then flow through the nanopore and the current is measured. This method has the advantage of potentially solving the translocation rate problem, as the speed is controlled by the exonuclease. Here we consider the practical details of exonuclease attachment to the protein alpha hemolysin. We employ molecular dynamics simulations to determine the ideal (a) distance from alpha-hemolysin, and (b) the orientation of the monophosphate nucleotides upon release from the exonuclease such that they will enter the protein. Our results indicate an almost linear decrease in the probability of entry into the protein with increasing distance of nucleotide release. The nucleotide orientation is less significant for entry into the protein.
机译:用于DNA测序的纳米孔技术正在不断完善和改进。在链测序中,单链DNA穿过纳米孔,随后测量电流波动。一个主要的障碍是DNA以目前的测量系统太快的速度通过孔移位。另一种方法是“核酸外切酶测序”,其中将核酸外切酶连接到能够加工该链的纳米孔上,一次切割一个碱基。然后,碱流过纳米孔,并测量电流。该方法的优点是可以潜在地解决易位率问题,因为速度是由核酸外切酶控制的。在这里,我们考虑核酸外切酶对蛋白质α溶血素的附着的实际细节。我们采用分子动力学模拟来确定理想的(a)与α-溶血素的距离,以及(b)从外切核酸酶释放后单磷酸核苷酸的方向,以使它们进入蛋白质。我们的结果表明,随着核苷酸释放距离的增加,进入蛋白质的可能性几乎呈线性下降。核苷酸方向对于进入蛋白质而言意义不大。

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