Sun Boran, Shin Mi-Kyung, Qin Meng, Anderson Caleb F, Xu Tian, Yang Jiarui, Sklar Claire, Polotsky Vsevolod Y, Cui Honggang
Department of Chemical and Biomolecular Engineering, Johns Hopkins University, Baltimore, Maryland 21218, United States.
Institute for NanoBioTechnology, Johns Hopkins University, Baltimore, Maryland 21218, United States.
ACS Nano. 2025 Jul 15;19(27):24817-24830. doi: 10.1021/acsnano.5c02462. Epub 2025 Jun 30.
Supramolecular polymeric hydrogels have emerged as a dynamic, versatile platform for localized therapeutic delivery, leveraging reversible and tunable noncovalent interactions. Despite their potential, designing supramolecular polymers that combine high drug loading with sustained, controlled release remains a considerable challenge. Here, we introduce a series of drug-inspired, peptide-based monomers engineered as supramolecular hydrogelators to facilitate high-affinity coassembly with therapeutic agents. By strategically utilizing electrostatic complexation and π-π stacking interactions, these hydrogelators self-assemble into robust supramolecular polymer networks with well-defined nanostructures, achieving nearly 100% fingolimod loading efficiency and extremely high loading capacity (up to approximately 32% by mass). Our results demonstrate that these tailored supramolecular interactions not only enhance the fingolimod drug loading efficiency and capacity, but also modulate the self-assembly and dissociation process, enabling prolonged and predictable drug release both and . We believe this work advances the field of supramolecular polymers by integrating drug-inspired molecular design principles and contributes to the development of advanced drug delivery systems with broader biomedical applications.
超分子聚合物水凝胶已成为一种动态、多功能的局部治疗给药平台,利用可逆和可调的非共价相互作用。尽管它们具有潜力,但设计出将高药物负载量与持续、可控释放相结合的超分子聚合物仍然是一项重大挑战。在此,我们介绍了一系列受药物启发、基于肽的单体,这些单体被设计为超分子水凝胶剂,以促进与治疗剂的高亲和力共组装。通过策略性地利用静电络合和π-π堆积相互作用,这些水凝胶剂自组装成具有明确纳米结构的坚固超分子聚合物网络,实现了近100%的芬戈莫德负载效率和极高的负载能力(高达约32%质量)。我们的结果表明,这些定制的超分子相互作用不仅提高了芬戈莫德的药物负载效率和能力,还调节了自组装和解离过程,从而在体外和体内实现了延长且可预测的药物释放。我们相信这项工作通过整合受药物启发的分子设计原则推动了超分子聚合物领域的发展,并有助于开发具有更广泛生物医学应用的先进药物递送系统。