posted on 2015-09-15, 00:00authored byShuang Zhang, Xiaofeng Wang, Tang Li, Lei Liu, Hai-Chen Wu, Mengbo Luo, Jingyuan Li
In
this work, we use molecular dynamics simulations to study the responses
of the configuration of single-strand DNA (ssDNA) within a carbon
nanotube (CNT) and the concomitant ion flow to a single modified base,
i.e., benzoimidazole (Bzim)-modified 5-hydroxymethyl cytosine (5hmC).
Our simulation results show the Bzim-modified 5hmC can considerably
increase the ion flow through a single-walled carbon nanotube (SWCNT),
despite its larger size, which is consistent with prior experimental
results. This phenomenon is attributed to enhanced adsorption of DNA
to the interior wall of the CNT driven by the Bzim-modified 5hmC,
leading to a reduced steric effect on ion transport through the CNT.
As revealed in this work, the distribution of ssDNA can be affected
by limited change in the interactions with the CNT surface. Such behavior
of ssDNA within small-sized CNTs can be exploited to further improve
the sensitivity of nanopore detection.