Amaro Luis, Correia Daniela M, Martins Pedro M, Botelho Gabriela, Carabineiro Sónia A C, Ribeiro Clarisse, Lanceros-Mendez Senentxu
Center of Physics, Universidade do Minho, 4710-057 Braga, Portugal.
Center of Chemistry, Universidade de Trás-os-Montes e Alto Douro, 5001-801 Vila Real, Portugal.
Polymers (Basel). 2020 Apr 20;12(4):953. doi: 10.3390/polym12040953.
Poly(hydroxybutyrate-co-hydroxyvalerate) (PHBV) is a piezoelectric biodegradable and biocompatible polymer suitable for tissue engineering applications. The incorporation of magnetostrictive cobalt ferrites (CFO) into PHBV matrix enables the production of magnetically responsive composites, which proved to be effective in the differentiation of a variety of cells and tissues. In this work, PHBV and PHBV with CFO nanoparticles were produced in the form of films, fibers and porous scaffolds and subjected to an experimental program allowing to evaluate the degradation process under biological conditions for a period up to 8 weeks. The morphology, physical, chemical and thermal properties were evaluated, together with the weight loss of the samples during the in vitro degradation assays. No major changes in the mentioned properties were found, thus proving its applicability for tissue engineering applications. Degradation was apparent from week 4 and onwards, leading to the conclusion that the degradation ratio of the material is suitable for a large range of tissue engineering applications. Further, it was found that the degradation of the samples maintain the biocompatibility of the materials for the pristine polymer, but can lead to cytotoxic effects when the magnetic CFO nanoparticles are exposed, being therefore needed, for magnetoactive applications, to substitute them by biocompatible ferrites, such as an iron oxide (FeO).
聚(3-羟基丁酸酯-co-3-羟基戊酸酯)(PHBV)是一种压电、可生物降解且生物相容的聚合物,适用于组织工程应用。将磁致伸缩钴铁氧体(CFO)掺入PHBV基体中能够制备出磁响应复合材料,事实证明该复合材料在多种细胞和组织的分化中有效。在这项工作中,PHBV和含有CFO纳米颗粒的PHBV以薄膜、纤维和多孔支架的形式制备,并进行了一个实验项目,以评估其在生物条件下长达8周的降解过程。对其形态、物理、化学和热性能进行了评估,并结合体外降解试验中样品的重量损失进行分析。未发现上述性能有重大变化,从而证明了其在组织工程应用中的适用性。从第4周及以后降解明显,得出该材料的降解率适用于广泛的组织工程应用的结论。此外,还发现样品的降解保持了原始聚合物材料的生物相容性,但当磁性CFO纳米颗粒暴露时会导致细胞毒性效应,因此对于磁活性应用而言,需要用生物相容性铁氧体(如氧化铁(FeO))来替代它们。