School of Pharmacy , University of Nottingham , Nottingham NG7 2RD , U.K.
Faculty of Science and Engineering , University of Groningen , Groningen 9747 AG , The Netherlands.
Langmuir. 2018 Jun 12;34(23):6912-6921. doi: 10.1021/acs.langmuir.8b00646. Epub 2018 May 29.
Among the diversity of existing supramolecular hydrogels, nucleic acid-based hydrogels are of particular interest for potential drug delivery and tissue engineering applications because of their inherent biocompatibility. Hydrogel performance is directly related to the nanostructure and the self-assembly mechanism of the material, an aspect that is not well-understood for nucleic acid-based hydrogels in general and has not yet been explored for cytosine-based hydrogels in particular. Herein, we use a broad range of experimental characterization techniques along with molecular dynamics (MD) simulation to demonstrate the complementarity and applicability of both approaches for nucleic acid-based gelators in general and propose the self-assembly mechanism for a novel supramolecular gelator, N-octanoyl-2'-deoxycytidine. The experimental data and the MD simulation are in complete agreement with each other and demonstrate the formation of a hydrophobic core within the fibrillar structures of these mainly water-containing materials. The characterization of the distinct duality of environments in this cytidine-based gel will form the basis for further encapsulation of both small hydrophobic drugs and biopharmaceuticals (proteins and nucleic acids) for drug delivery and tissue engineering applications.
在现有的各种超分子水凝胶中,基于核酸的水凝胶因其固有生物相容性而特别适用于潜在的药物输送和组织工程应用。水凝胶的性能与材料的纳米结构和自组装机制直接相关,而一般来说,基于核酸的水凝胶在这方面的理解还不够深入,特别是对于基于胞嘧啶的水凝胶尚未进行探索。在这里,我们使用广泛的实验表征技术以及分子动力学(MD)模拟来证明这两种方法对于一般基于核酸的凝胶剂的互补性和适用性,并提出了一种新型超分子凝胶剂 N-辛酰基-2'-脱氧胞苷的自组装机制。实验数据和 MD 模拟完全一致,证明了在这些主要含水材料的纤维状结构内形成了疏水性核心。对这种基于胞嘧啶的凝胶中不同环境的独特双重性的表征将为进一步封装小分子疏水性药物和生物制药(蛋白质和核酸)以用于药物输送和组织工程应用奠定基础。