Colucci Francesco, Mancini Vanessa, Mattu Clara, Boffito Monica
Department of Mechanical and Aerospace Engineering, Politecnico di Torino, 10129 Turin, Italy.
Department of Anatomy & Embryology, Leiden University Medical Center, 2333 ZC Leiden, The Netherlands.
Pharmaceutics. 2021 Mar 30;13(4):464. doi: 10.3390/pharmaceutics13040464.
Regenerative pharmacology combines tissue engineering/regenerative medicine (TERM) with drug delivery with the aim to improve the outcomes of traditional TERM approaches. In this work, we aimed to design a multicomponent TERM platform comprising a three-dimensional scaffold, a thermosensitive hydrogel, and drug-loaded nanoparticles. We used a thermally induced phase separation method to obtain scaffolds with anisotropic mechanical properties, suitable for soft tissue engineering. A thermosensitive hydrogel was developed using a Poloxamer 407-based poly(urethane) to embed curcumin-loaded nanoparticles, obtained by the single emulsion nanoprecipitation method. We found that encapsulated curcumin could retain its antioxidant activity and that embedding nanoparticles within the hydrogel did not affect the hydrogel gelation kinetics nor the possibility to progressively release the drug. The porous scaffold was easily loaded with the hydrogel, resulting in significantly enhanced (4-fold higher) absorption of a model molecule of nutrients (fluorescein isothiocyanate dextran 4kDa) from the surrounding environment compared to pristine scaffold. The developed platform could thus represent a valuable alternative in the treatment of many pathologies affecting soft tissues, by concurrently exploiting the therapeutic effects of drugs, with the 3D framework acting as a physical support for tissue regeneration and the cell-friendly environment represented by the hydrogel.
再生药理学将组织工程/再生医学(TERM)与药物递送相结合,旨在改善传统TERM方法的效果。在这项工作中,我们旨在设计一个多组分TERM平台,该平台由三维支架、热敏水凝胶和载药纳米颗粒组成。我们使用热诱导相分离方法来获得具有各向异性机械性能的支架,适用于软组织工程。使用基于泊洛沙姆407的聚(聚氨酯)开发了一种热敏水凝胶,以包埋通过单乳液纳米沉淀法获得的载姜黄素纳米颗粒。我们发现包封的姜黄素可以保留其抗氧化活性,并且将纳米颗粒包埋在水凝胶中不会影响水凝胶的凝胶化动力学,也不会影响药物逐步释放的可能性。多孔支架很容易负载水凝胶,与原始支架相比,从周围环境中吸收营养模型分子(异硫氰酸荧光素葡聚糖4kDa)的能力显著增强(高出4倍)。因此,开发的平台可以代表治疗许多影响软组织的疾病的有价值的替代方案,通过同时利用药物的治疗效果,三维框架作为组织再生的物理支持,水凝胶代表细胞友好环境。