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用于骨再生的陶瓷-聚合物杂化支架的开发和特性:将生物活性玻璃 BG-58S 掺入 PDLLA 基质中。

Development and characterization of ceramic-polymeric hybrid scaffolds for bone regeneration: incorporating of bioactive glass BG-58S into PDLLA matrix.

机构信息

Characterization and Processing Laboratory of Advanced Materials, Institute for Research and Development, University of Vale do Paraíba, São Paulo, Brazil.

Selaz - Industry and Commercialization of Biomechanical Devices, São Paulo, Brazil.

出版信息

J Biomater Sci Polym Ed. 2024 Jul;35(10):1493-1510. doi: 10.1080/09205063.2024.2334981. Epub 2024 Apr 3.

DOI:10.1080/09205063.2024.2334981
PMID:38569077
Abstract

In recent years, there has been a notable surge of interest in hybrid materials within the biomedical field, particularly for applications in bone repair and regeneration. Ceramic-polymeric hybrid scaffolds have shown promising outcomes. This study aimed to synthesize bioactive glass (BG-58S) for integration into a bioresorbable polymeric matrix based on PDLLA, aiming to create a bioactive scaffold featuring stable pH levels. The synthesis involved a thermally induced phase separation process followed by lyophilization to ensure an appropriate porous structure. BG-58S characterization revealed vitreous, bioactive, and mesoporous structural properties. The scaffolds were analyzed for morphology, interconnectivity, chemical groups, porosity and pore size distribution, zeta potential, pH, degradation, as well as cell viability tests, total protein content and mineralization nodule production. The PDLLA scaffold displayed a homogeneous morphology with interconnected macropores, while the hybrid scaffold exhibited a heterogeneous morphology with smaller diameter pores due to BG-58S filling. The hybrid scaffold also demonstrated a pH buffering effect on the polymer surface. In addition to structural characteristics, degradation tests indicated that by incorporating BG-58S modified the acidic degradation of the polymer, allowing for increased total protein production and the formation of mineralization nodules, indicating a positive influence on cell culture.

摘要

近年来,生物医学领域对杂化材料的兴趣显著增加,特别是在骨修复和再生方面的应用。陶瓷-聚合物杂化支架已经显示出了有前途的结果。本研究旨在合成生物活性玻璃(BG-58S),将其整合到基于 PDLLA 的可生物降解聚合物基质中,旨在创建具有稳定 pH 值的生物活性支架。该合成涉及热诱导相分离过程,随后进行冷冻干燥以确保适当的多孔结构。BG-58S 的表征揭示了玻璃态、生物活性和中孔结构特性。对支架进行形貌、连通性、化学基团、孔隙率和孔径分布、zeta 电位、pH 值、降解以及细胞活力测试、总蛋白含量和矿化结节生成进行了分析。PDLLA 支架呈现均匀的形态,具有连通的大孔,而杂化支架由于 BG-58S 的填充呈现出不均匀的形态,具有较小直径的孔。杂化支架还在聚合物表面表现出 pH 缓冲作用。除了结构特征外,降解测试表明,通过加入 BG-58S 可以改变聚合物的酸性降解,从而增加总蛋白的产生和矿化结节的形成,这表明对细胞培养有积极的影响。

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引用本文的文献

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