Programmable Biomaterials Laboratory, Institute of Materials, School of Engineering, Ecole Polytechnique Fédérale Lausanne, Lausanne, 1015, Switzerland.
Department of Chemistry, Molecular Sciences Research Hub, Imperial College London, London W12 0BZ, UK.
Nanoscale. 2023 Feb 9;15(6):2849-2859. doi: 10.1039/d2nr05368c.
Nucleic acids and lipids function in close proximity in biological processes, as well as in nanoengineered constructs for therapeutic applications. As both molecules carry a rich charge profile, and frequently coexist in complex ionic solutions, the electrostatics surely play a pivotal role in interactions between them. Here we discuss how each component of a DNA/ion/lipid system determines its electrostatic attachment. We examine membrane binding of a library of DNA molecules varying from nanoengineered DNA origami through plasmids to short DNA domains, demonstrating the interplay between the molecular structure of the nucleic acid and the phase of lipid bilayers. Furthermore, the magnitude of DNA/lipid interactions is tuned by varying the concentration of magnesium ions in the physiologically relevant range. Notably, we observe that the structural and mechanical properties of DNA are critical in determining its attachment to lipid bilayers and demonstrate that binding is correlated positively with the size, and negatively with the flexibility of the nucleic acid. The findings are utilized in a proof-of-concept comparison of membrane interactions of two DNA origami designs - potential nanotherapeutic platforms - showing how the results can have a direct impact on the choice of DNA geometry for biotechnological applications.
核酸和脂质在生物过程中以及在治疗应用的纳米工程构建体中密切相关。由于这两种分子都带有丰富的电荷分布,并且经常在复杂的离子溶液中共存,因此静电肯定在它们之间的相互作用中起着关键作用。在这里,我们讨论了 DNA/离子/脂质系统的每个组成部分如何决定其静电附着。我们研究了一系列 DNA 分子与离子/脂质系统的相互作用,这些 DNA 分子从纳米工程 DNA 折纸到质粒再到短 DNA 结构域,展示了核酸的分子结构与脂质双层相之间的相互作用。此外,通过在生理相关范围内改变镁离子的浓度,可以调整 DNA/脂质相互作用的幅度。值得注意的是,我们观察到 DNA 的结构和机械性质在决定其与脂质双层的结合中起着关键作用,并证明结合与核酸的大小呈正相关,与核酸的灵活性呈负相关。这些发现被用于两种 DNA 折纸设计的膜相互作用的概念验证比较——潜在的纳米治疗平台——展示了结果如何直接影响生物技术应用中 DNA 几何形状的选择。