Center for Condensed Matter Theory, Department of Physics, Indian Institute of Science, Bangalore 560012, India.
Nucleic Acids Res. 2018 Mar 16;46(5):2234-2242. doi: 10.1093/nar/gkx1078.
Engineering the synthetic nanopores through lipid bilayer membrane to access the interior of a cell is a long persisting challenge in biotechnology. Here, we demonstrate the stability and dynamics of a tile-based 6-helix DNA nanotube (DNT) embedded in POPC lipid bilayer using the analysis of 0.2 μs long equilibrium MD simulation trajectories. We observe that the head groups of the lipid molecules close to the lumen cooperatively tilt towards the hydrophilic sugar-phosphate backbone of DNA and form a toroidal structure around the patch of DNT protruding in the membrane. Further, we explore the effect of ionic concentrations to the in-solution structure and stability of the lipid-DNT complex. Transmembrane ionic current measurements for the constant electric field MD simulation provide the I-V characteristics of the water filled DNT lumen in lipid membrane. With increasing salt concentrations, the measured values of transmembrane ionic conductance of the porous DNT lumen vary from 4.3 to 20.6 nS. Simulations of the DNTs with ssDNA and dsDNA overhangs at the mouth of the pore show gating effect with remarkable difference in the transmembrane ionic conductivities for open and close state nanopores.
通过脂质双层膜工程合成纳米孔以进入细胞内部是生物技术中长期存在的挑战。在这里,我们使用长达 0.2μs 的平衡 MD 模拟轨迹分析,展示了嵌入 POPC 脂质双层中的基于瓦片的 6 螺旋 DNA 纳米管(DNT)的稳定性和动力学。我们观察到,靠近腔的脂质分子的头基协同地向 DNA 的亲水性糖-磷酸骨架倾斜,并在膜中突出的 DNT 斑块周围形成环形结构。此外,我们还研究了离子浓度对脂质-DNT 复合物在溶液中的结构和稳定性的影响。对于恒定电场 MD 模拟的跨膜离子电流测量提供了填充水的 DNT 腔在脂质膜中的 I-V 特性。随着盐浓度的增加,多孔 DNT 腔的跨膜离子电导率的测量值从 4.3 到 20.6 nS 变化。在孔口带有 ssDNA 和 dsDNA 突出物的 DNTs 的模拟显示出具有显著差异的门控效应,对于开放和关闭状态纳米孔的跨膜离子电导率不同。