Department of Chemistry, Materials and Chemical Engineering 'Giulio Natta', Politecnico di Milano, Piazza Leonardo da Vinci 32, Milan, 20133, Italy.
Macromol Biosci. 2024 Oct;24(10):e2400084. doi: 10.1002/mabi.202400084. Epub 2024 May 23.
The targeted delivery of drugs using wireless navigable magnetic robots allows the delivery of drug molecules to be controlled non only in time but also in space, improving medical outcomes. The main disadvantages behind their use lies in the low amount of drug that can be transported and the single nature of drug that can be loaded (hydrophilic or hydrophobic). These considerations limit their use in co-delivery systems, now recognized to be very promising for many different pathologies. A magnetic bijel-like structure is developed to load and release different types of molecules (hydrophilic and hydrophobic). In this work, the use of ε-caprolactone is explored, which can polymerize, forming hydrophobic domains (oil phase). After mixing with iron oxide nanoparticles (NPs), the water dispersion creates a magnetic biphasic porous structure without phase separation. The resulting device shows good performance both in magnetic actuation and as a drug delivery system.
使用无线导航磁性机器人进行靶向药物输送不仅可以控制药物分子的输送时间,还可以控制空间,从而改善医疗效果。它们使用的主要缺点在于可以输送的药物量低,并且可以加载的药物种类单一(亲水性或疏水性)。这些考虑因素限制了它们在共输送系统中的使用,现在共输送系统被认为对许多不同的病理非常有前途。开发了一种类似磁性双连续体的结构来加载和释放不同类型的分子(亲水性和疏水性)。在这项工作中,探索了 ε-己内酯的使用,它可以聚合形成疏水性结构域(油相)。与氧化铁纳米粒子(NPs)混合后,水分散体形成了没有相分离的磁性双相多孔结构。所得装置在磁致动和药物输送系统方面均表现出良好的性能。