Institute for Molecules and Materials , Radboud University , Heyendaalseweg 135 , 6525 AJ Nijmegen , The Netherlands.
ACS Nano. 2019 Sep 24;13(9):10798-10809. doi: 10.1021/acsnano.9b05650. Epub 2019 Sep 16.
The DNA origami technique has proven to have tremendous potential for therapeutic and diagnostic applications like drug delivery, but the relatively low concentrations of cations in physiological fluids cause destabilization and degradation of DNA origami constructs preventing applications. To reveal the mechanisms behind DNA origami stabilization by cations, we performed atomistic molecular dynamics simulations of a DNA origami rectangle in aqueous solvent with varying concentrations of magnesium and sodium as well as polyamines like oligolysine and spermine. We explored the binding of these ions to DNA origami in detail and found that the mechanism of stabilization differs between ion types considerably. While sodium binds weakly and quickly exchanges with the solvent, magnesium and spermine bind close to the origami with spermine also located in between helices, stabilizing the crossovers characteristic for DNA origami and reducing repulsion of parallel helices. In contrast, oligolysine of length ten prevents helix repulsion by binding to adjacent helices with its flexible side chains, spanning the gap between the helices. Shorter oligolysine molecules with four subunits are weak stabilizers as they lack both the ability to connect helices and to prevent helix repulsion. This work thus shows how the binding modes of ions influence the stabilization of DNA origami nanostructures on a molecular level.
DNA 折纸技术已被证明在药物输送等治疗和诊断应用方面具有巨大的潜力,但生理液中相对较低的阳离子浓度会导致 DNA 折纸结构的不稳定性和降解,从而阻止了其应用。为了揭示阳离子稳定 DNA 折纸的机制,我们在含有不同浓度镁和钠以及聚胺(如寡聚赖氨酸和精胺)的水溶液中对 DNA 折纸矩形进行了原子分子动力学模拟。我们详细研究了这些离子与 DNA 折纸的结合情况,发现不同离子类型的稳定机制有很大的不同。虽然钠离子结合较弱且与溶剂快速交换,但镁离子和精胺紧密结合在 DNA 折纸附近,精胺也位于螺旋之间,稳定了 DNA 折纸特有的交叉点并减少了平行螺旋之间的排斥。相比之下,长度为 10 的寡聚赖氨酸通过其柔性侧链与相邻的螺旋结合,跨越螺旋之间的间隙,从而防止螺旋排斥。具有四个亚基的较短寡聚赖氨酸分子是弱稳定剂,因为它们既缺乏连接螺旋的能力,也缺乏防止螺旋排斥的能力。因此,这项工作表明离子的结合模式如何在分子水平上影响 DNA 折纸纳米结构的稳定性。