Lim M C G, Zhong Z W
School of Mechanical and Aerospace Engineering, Nanyang Technological University, Singapore.
Phys Rev E Stat Nonlin Soft Matter Phys. 2009 Oct;80(4 Pt 1):041915. doi: 10.1103/PhysRevE.80.041915. Epub 2009 Oct 12.
This paper presents molecular-dynamics (MD) simulations of DNA oligonucleotide and water molecules translocating through carbon nanotube (CNT) channels. An induced pressure difference is applied to the system by pushing a layer of water molecules toward the flow direction to drive the oligonucleotide and other molecules. This MD simulation investigates the changes that occur in the conformation of the oligonucleotide due to water molecules in nanochannels while controlling the temperature and volume of the system in a canonical ensemble. The results show that the oligonucleotide in the (8,8)-(12,12) CNT channel forms a folded state at a lower pressure, whereas the oligonucleotide in the (10,10)-(14,14) CNT channel forms a folded state at a higher pressure instead. The van der Waals forces between the water molecules and the oligonucleotide suggest that the attraction between these two types of molecules results in the linear arrangements of the bases of the oligonucleotide. For a larger nanotube channel, the folding of the oligonucleotide is mainly dependent on the solvent (water molecules), whereas pressure, the size of the nanotube junction, and water molecules are the considering factors of the folding of the oligonucleotide at a smaller nanotube channel. For a folded oligonucleotide, the water distribution around the oligonucleotide is concentrated at a smaller range than that for the distribution around an unfolded oligonucleotide.
本文展示了DNA寡核苷酸和水分子通过碳纳米管(CNT)通道转运的分子动力学(MD)模拟。通过将一层水分子推向流动方向对系统施加诱导压力差,以驱动寡核苷酸和其他分子。该MD模拟研究了在正则系综中控制体系温度和体积时,纳米通道中的水分子导致寡核苷酸构象发生的变化。结果表明,(8,8)-(12,12)碳纳米管通道中的寡核苷酸在较低压力下形成折叠态,而(10,10)-(14,14)碳纳米管通道中的寡核苷酸则在较高压力下形成折叠态。水分子与寡核苷酸之间的范德华力表明,这两种分子之间的吸引力导致了寡核苷酸碱基的线性排列。对于较大的纳米管通道,寡核苷酸的折叠主要取决于溶剂(水分子),而对于较小的纳米管通道,压力、纳米管连接处的尺寸和水分子是寡核苷酸折叠的考虑因素。对于折叠的寡核苷酸,寡核苷酸周围的水分布比未折叠寡核苷酸周围的水分布集中在更小的范围内。