Chirkov Nikolay S, Campbell Richard A, Michailov Alexander V, Vlasov Petr S, Noskov Boris A
Institute of Chemistry, Saint Petersburg State University, 198504 St. Petersburg, Russia.
Division of Pharmacy and Optometry, Faculty of Biology, Medicine and Health, University of Manchester, Manchester M13 9PT, UK.
Polymers (Basel). 2021 Aug 22;13(16):2820. doi: 10.3390/polym13162820.
The formation of ordered 2D nanostructures of double stranded DNA molecules at various interfaces attracts more and more focus in medical and engineering research, but the underlying intermolecular interactions still require elucidation. Recently, it has been revealed that mixtures of DNA with a series of hydrophobic cationic polyelectrolytes including poly(,-diallyl--hexyl--methylammonium) chloride (PDAHMAC) form a network of ribbonlike or threadlike aggregates at the solution-air interface. In the present work, we adopt a novel approach to confine the same polyelectrolyte at the solution-air interface by spreading it on a subphase with elevated ionic strength. A suite of techniques-rheology, microscopy, ellipsometry, and spectroscopy-are applied to gain insight into main steps of the adsorption layer formation, which results in non-monotonic kinetic dependencies of various surface properties. A long induction period of the kinetic dependencies after DNA is exposed to the surface film results only if the initial surface pressure corresponds to a quasiplateau region of the compression isotherm of a PDAHMAC monolayer. Despite the different aggregation mechanisms, the micromorphology of the mixed PDAHMAC/DNA does not depend noticeably on the initial surface pressure. The results provide new perspective on nanostructure formation involving nucleic acids building blocks.
双链DNA分子在各种界面形成有序二维纳米结构在医学和工程研究中吸引了越来越多的关注,但其潜在的分子间相互作用仍有待阐明。最近,已发现DNA与一系列疏水性阳离子聚电解质(包括聚(γ,γ-二烯丙基-γ-己基-γ-甲基氯化铵)(PDAHMAC))的混合物在溶液-空气界面形成带状或线状聚集体网络。在本工作中,我们采用一种新方法,通过将相同的聚电解质铺展在具有升高离子强度的亚相上,将其限制在溶液-空气界面。应用了一系列技术——流变学、显微镜、椭偏仪和光谱学——来深入了解吸附层形成的主要步骤,这导致各种表面性质呈现非单调的动力学依赖性。只有当初始表面压力对应于PDAHMAC单层压缩等温线的准平台区域时,DNA暴露于表面膜后动力学依赖性才会出现长诱导期。尽管聚集机制不同,但混合的PDAHMAC/DNA的微观形态对初始表面压力的依赖性并不明显。这些结果为涉及核酸构建块的纳米结构形成提供了新的视角。