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聚偏氟乙烯-三氟乙烯/钛酸钡支架的近场与远场混合静电纺丝:形态学及成骨样细胞反应

Hybrid near and far field electrospinning of PVDF-TrFE/BaTiOscaffolds: morphology and osteoblast-like cell responses.

作者信息

Ribeiro Larissa Mayra Silva, Berniak Krzysztof, Sukumaran Sunija, Gimenes Rossano, Stachewicz Urszula

机构信息

Department of Technologies for Production and Health, Renato Archer Information Technology Center, Campinas, Brazil.

Chemistry and Physics Institute, Federal University of Itajuba, Itajuba, Brazil.

出版信息

Biomed Mater. 2025 Jan 6;20(1). doi: 10.1088/1748-605X/ada2cf.

Abstract

Scaffolds are of great interest in tissue engineering associated with regenerative medicine owing to their ability to mimic biological structures and provide support for new tissue formation. Several techniques are used to produce biological scaffolds; among them, far-field electrospinning (FFES) process is widely used due to its versatility in producing promising structures similar to native tissues owing to the electrospun nanofibers. On the other hand, near-field electrospinning (NFES) has been investigated due to the possibility of creating scaffolds with suitable architecture for their use in specific biological tissues. Thus, we investigated the potential of the electrospun scaffolds prepared using both techniques FFES and NFES, with tailored properties to mimic bone tissue native matrix and enhance the cell response. We produced scaffolds with the piezoelectric poly(vinylidene fluoride-trifluoroethylene) combined with BaTiOnanoparticles. Hence, the properties of both scaffolds were evaluated in terms of crystallinity and cell behavior, such as adhesion, proliferation and cell viability. Microstructure properties showed good thermal stability, similar crystallinity (∼65%) and a-phase content of ∼40% for both scaffolds. For biological tests, MG-63 osteoblast-like cells were used, and for NFES scaffolds, we noted that the proliferation and cell alignment followed the fiber pattern and created a bridge between adjacent fibers. In contrast, cells spread and proliferated randomly on the surface of the FFES scaffold. Despite the differences in cell behavior, both scaffolds showed good biocompatibility in terms of functional scaffolds with suitable characteristics for use in the area of tissue regeneration.

摘要

由于具有模仿生物结构并为新组织形成提供支撑的能力,支架在与再生医学相关的组织工程中备受关注。有几种技术可用于制造生物支架;其中,远场静电纺丝(FFES)工艺因其在制造与天然组织相似的有前景结构方面的多功能性而被广泛使用,这得益于静电纺丝纳米纤维。另一方面,近场静电纺丝(NFES)也受到了研究,因为有可能制造出具有适合特定生物组织使用的合适结构的支架。因此,我们研究了使用FFES和NFES这两种技术制备的静电纺丝支架的潜力,这些支架具有定制的特性,以模仿骨组织天然基质并增强细胞反应。我们制备了将压电聚(偏二氟乙烯 - 三氟乙烯)与钛酸钡纳米颗粒相结合的支架。因此,从结晶度和细胞行为(如粘附、增殖和细胞活力)方面对两种支架的性能进行了评估。微观结构性能表明,两种支架都具有良好的热稳定性、相似的结晶度(约65%)和约40%的α相含量。在生物测试中,使用了MG - 63成骨样细胞,对于NFES支架,我们注意到细胞增殖和排列遵循纤维模式,并在相邻纤维之间形成了桥梁。相比之下,细胞在FFES支架表面随机铺展和增殖。尽管细胞行为存在差异,但两种支架在作为具有适合组织再生领域使用的合适特性的功能性支架方面都表现出良好的生物相容性。

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