首页> 外文期刊>Biomacromolecules >Three-Dimensional Hierarchical Composite Scaffolds Consisting of Polycaprolactone, β-Tricalcium Phosphate, and Collagen Nanofibers: Fabrication, Physical Properties, and In Vitro Cell Activity for Bone Tissue Regeneration
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Three-Dimensional Hierarchical Composite Scaffolds Consisting of Polycaprolactone, β-Tricalcium Phosphate, and Collagen Nanofibers: Fabrication, Physical Properties, and In Vitro Cell Activity for Bone Tissue Regeneration

机译:聚己内酯,β-磷酸三钙和胶原蛋白纳米纤维组成的三维层次复合支架:制备,物理性质和用于骨组织再生的体外细胞活性

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β-Tricalcium phosphate (β-TCP) and collagen have been widely used to regenerate various hard tissues, but although Bioceratnics and collagen have various biological advantages with respect to cellular activity, their usage has been limited due to β-TCP's inherent brittleness and low mechanical properties, along with the low shape-ability of the three-dimensional collagen. To overcome these material deficiencies, we fabricated a new hierarchical scaffold that consisted of a melt-plotted polycaprolactone (PCL)/β-TCP composite and embedded collagen nanofibers. The fabrication process was combined with general melt-plotting methods and electrospinning. To evaluate the capability of this hierarchical scaffold to act as a biomaterial for bone tissue regeneration, physical and biological assessments were performed. Scanning electron microscope (SEM) micrographs of the fabricated scaffolds indicated that the β-TCP particles were uniformly embedded in PCL struts and that electrospun collagen nanofibers (diameter =160 nm) were well layered between the composite struts. By accommodating the β-TCP and collagen nanofibers, the hierarchical composite scaffolds showed dramatic water-absorption ability (100% increase), increased hydrophilic properties (20%), and good mechanical properties similar to PCL/β-TCP composite. MTT assay and SEM images of cell-seeded scaffolds showed that the initial attachment of osteoblast-like cells (MG63) in the hierarchical scaffold was 2.2 times higher than that on the PCL/β-TCP composite scaffold. Additionally, the proliferation rate of the cells was about two times higher than that of the composite scaffold after 7 days of cell culture. Based on these results, we conclude that the collagen nanofibers and β-TCP particles in the scaffold, provide good synergistic effects for cell activity.
机译:β-磷酸三钙(β-TCP)和胶原蛋白已被广泛用于再生各种硬组织,但是尽管生物陶瓷和胶原蛋白在细胞活性方面具有多种生物学优势,但由于β-TCP固有的脆性和低发性,其使用受到限制。机械特性,以及三维胶原蛋白的低成型能力。为了克服这些材料上的不足,我们制造了一种新的分层支架,该支架由熔体绘制的聚己内酯(PCL)/β-TCP复合材料和嵌入的胶原纳米纤维组成。将制造过程与一般的熔滴法和电纺丝相结合。为了评估该分级支架充当骨组织再生的生物材料的能力,进行了物理和生物学评估。制成的支架的扫描电子显微镜(SEM)显微照片表明,β-TCP颗粒均匀地嵌入PCL撑杆中,并且电纺胶原纳米纤维(直径= 160 nm)很好地分层在复合撑杆之间。通过容纳β-TCP和胶原蛋白纳米纤维,分层复合支架表现出了显着的吸水能力(增加了100%),增加了亲水性(20%)以及类似于PCL /β-TCP复合物的良好机械性能。 MTT分析和细胞接种支架的SEM图像显示,分层支架中成骨细胞样细胞(MG63)的初始附着力是PCL /β-TCP复合支架的2.2倍。另外,细胞培养7天后,细胞的增殖速率比复合支架的增殖速率高约两倍。基于这些结果,我们得出结论,支架中的胶原纳米纤维和β-TCP颗粒为细胞活性提供了良好的协同作用。

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