Zhao Liang, Gu Zonglin
College of Physical Science and Technology, Yangzhou University, Yangzhou, Jiangsu 225009, China.
J Phys Chem B. 2021 Mar 11;125(9):2258-2265. doi: 10.1021/acs.jpcb.0c11288. Epub 2021 Feb 24.
Recently, carbon nitride polyaniline (CN) had attracted considerable attention from many scientific fields after its successful synthesis. However, thus far, limited efforts were devoted to reveal its potential effect to biomolecules, which correlated intimately with its further utilization. In this study, by using a molecular dynamics (MD) simulation approach, we investigated in detail the interaction between CN and a double-stranded DNA (dsDNA) segment to expose the underlying biological effect of CN to dsDNA and the corresponding molecular basis. MD simulation results demonstrated that dsDNA presented serious damages upon adsorption onto a CN nanosheet with the terminal base pairs denaturized, unwound, and directly packing on the CN surface, which implied that CN was potentially deleterious to biomolecules. This binding/unwinding process was mainly guided by a combination of van der Waals and π-π stacking interactions together with a continuous lateral migration of dsDNA. Moreover, the nanoscale dewetting also played an important role during the adsorption. These findings revealed the potential bio-effect of the CN nanomaterial and its molecular mechanism, which might benefit the future applications of CN-based nanostructures.
最近,氮化碳聚苯胺(CN)在成功合成后受到了许多科学领域的广泛关注。然而,到目前为止,人们在揭示其对生物分子的潜在影响方面投入的精力有限,而这与它的进一步应用密切相关。在本研究中,我们采用分子动力学(MD)模拟方法,详细研究了CN与双链DNA(dsDNA)片段之间的相互作用,以揭示CN对dsDNA的潜在生物学效应及其相应的分子基础。MD模拟结果表明,dsDNA吸附到CN纳米片上时会受到严重损伤,末端碱基对变性、解旋并直接堆积在CN表面,这意味着CN可能对生物分子有害。这种结合/解旋过程主要由范德华力和π-π堆积相互作用共同引导,同时dsDNA持续横向迁移。此外,纳米级去湿在吸附过程中也起着重要作用。这些发现揭示了CN纳米材料的潜在生物效应及其分子机制,这可能有利于基于CN的纳米结构的未来应用。