Computational Biophysics Group, Research School of Biology, Australian National University, Canberra, ACT 0200, Australia.
J Chem Phys. 2011 Jan 28;134(4):045103. doi: 10.1063/1.3524310.
The ability to design ion-selective, synthetic nanotubes which mimic biological ion channels may have significant implications for the future treatment of bacteria, diseases, and as ultrasensitive biosensors. We present the design of a synthetic nanotube made from carbon atoms that selectively allows monovalent cations to move across and rejects all anions. The cation-selective nanotube mimics some of the salient properties of biological ion channels. Before practical nanodevices are successfully fabricated it is vital that proof-of-concept computational studies are performed. With this in mind we use molecular and stochastic dynamics simulations to characterize the dynamics of ion permeation across a single-walled (10, 10), 36 Å long, carbon nanotube terminated with carboxylic acid with an effective radius of 5.08 Å. Although cations encounter a high energy barrier of 7 kT, its height is drastically reduced by a chloride ion in the nanotube. The presence of a chloride ion near the pore entrance thus enables a cation to enter the pore and, once in the pore, it is chaperoned by the resident counterion across the narrow pore. The moment the chaperoned cation transits the pore, the counterion moves back to the entrance to ferry another ion. The synthetic nanotube has a high sodium conductance of 124 pS and shows linear current-voltage and current-concentration profiles. The cation-anion selectivity ratio ranges from 8 to 25, depending on the ionic concentrations in the reservoirs.
设计对离子具有选择性、模拟生物离子通道的合成纳米管,可能对未来治疗细菌、疾病以及作为超灵敏生物传感器具有重要意义。我们提出了一种由碳原子制成的合成纳米管的设计,该纳米管选择性地允许单价阳离子通过并排斥所有阴离子。阳离子选择性纳米管模拟了一些生物离子通道的显著特性。在成功制造实用的纳米器件之前,进行概念验证的计算研究至关重要。考虑到这一点,我们使用分子和随机动力学模拟来描述穿过单壁(10,10)、36 Å 长、末端带有羧酸的碳纳米管的离子渗透动力学,其有效半径为 5.08 Å。尽管阳离子遇到 7 kT 的高能量势垒,但在纳米管中的氯离子的存在使其高度降低。因此,氯离子在孔口附近的存在使得阳离子能够进入孔中,并且一旦进入孔中,它就会被驻留的反离子引导穿过狭窄的孔。被引导的阳离子通过孔的那一刻,反离子就会回到入口处,以携带另一个离子。合成纳米管具有 124 pS 的高钠离子电导率,并显示出线性电流-电压和电流-浓度曲线。阳离子-阴离子选择性比范围为 8 到 25,具体取决于储液器中的离子浓度。