Eindhoven University of Technology, The Netherlands.
Biomater Sci. 2019 Dec 17;8(1):163-173. doi: 10.1039/c9bm01241a.
Supramolecular materials based on hydrogen bonding ureido-pyrimidinones (UPy) are highly versatile substrates for tissue engineering, as they provide a platform in which specific functions can be introduced in a modular fashion by means of components with matching supramolecular motifs. In this work, a core-shell fiber mesh is generated by coaxial electrospinning of a robust elastomeric UPy-poly(hexamethylene carbonate) (UPy-PC) core with a hydrophilic shell of poly(ethylene glycol) (UPy-PEG), which is exploited to confer drug release properties to the load-bearing core. The effect of PEG chain length and supramolecular crosslink density on mechanical properties and drug elution profiles is investigated. Hydrated UPy-PC/UPy-PEG meshes containing 30 mol% of UPy-PEG have a Young's modulus matching that of UPy-PC meshes of approximately 0.5 MPa, and elongation at break of 600%. Drug release experiments with low molecular weight drugs encapsulated in the UPy-PEG shell during electrospinning reveal a combined role of drug and matrix hydrophilicity on the elution profile. Our results indicate that a hydrophobic drug is retained in the UPy-PEG shell for several days with a maximum drug release of 56 ± 8% after 14 days, a highly water soluble drug undergoes burst release within one day, and the UPy-modification of a highly water soluble compound increases its retention in the UPy-PEG shell up to multiple weeks. Taken together, our results indicate that the proposed multi-component system is a drug delivery vehicle of excellent versatility for applications requiring strong and durable materials.
基于氢键脲嘧啶酮(UPy)的超分子材料是组织工程的多功能基质,因为它们提供了一个平台,可以通过具有匹配超分子图案的组件以模块化的方式引入特定功能。在这项工作中,通过同轴静电纺丝制备了一种坚固的弹性 UPy-聚(六亚甲基碳酸酯)(UPy-PC)核与亲水性聚乙二醇(UPy-PEG)壳的核壳纤维网,利用该纤维网赋予承载核药物释放性能。研究了 PEG 链长和超分子交联密度对力学性能和药物洗脱曲线的影响。含有 30mol%UPy-PEG 的水合 UPy-PC/UPy-PEG 网格的杨氏模量与约 0.5MPa 的 UPy-PC 网格相当,断裂伸长率为 600%。在静电纺丝过程中,对包封在 UPy-PEG 壳中的低分子量药物进行药物释放实验,结果表明药物和基质亲水性对洗脱曲线有共同作用。我们的结果表明,疏水性药物在 UPy-PEG 壳中保留数天,14 天后最大药物释放率为 56±8%,高度水溶性药物在一天内发生突释,高度水溶性化合物的 UPy 修饰使其在 UPy-PEG 壳中的保留时间延长至数周以上。总之,我们的结果表明,所提出的多组分系统是一种具有出色多功能性的药物输送载体,适用于需要坚固耐用材料的应用。