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3D-printed photoluminescent bioactive scaffolds with biomimetic elastomeric surface for enhanced bone tissue engineering

机译:3D印刷的光致发光生物活性支架,具有仿生弹性体表面,用于增强骨组织工程

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摘要

Three dimensional (3D) printed porous bioactive glass nanoparticles scaffolds (BGNS) exhibit excellent bone integration and bone regeneration capacities, but the early rapid ion release, brittle mechanical properties and lack of functions limit their application. In this work, photoluminescent biomimetic elastomeric BGNS were fabricated by directly assembling poly(citrate-siloxane) (PCS) on the surface of BGNS (BGNS@PCS). The morphologies, mechanical behavior, photoluminescent ability, ions release, biomineralization activity, biocompatibility and osteogenic properties of BGNS@PCS were evaluated in detail. The results indicated that BGNS@PCS presented superior elasticity and outstanding compressive strength compared with BGNS. The controlled release of the Si and Ca ions in BGNS@PCS was achieved and enhanced biomineralization ability was also observed. In addition, the modified scaffolds have the photoluminescent ability which has the potential application for bioimaging. BGNS@PCS could significantly promote cells attachment, proliferation and enhance osteogenic differentiation of mouse bone marrow stromal cells (BMSCs). Therefore, the BGNS@PCS with the multifunctional properties including elastomeric surface, enhanced photoluminescent, controlled ions release and biomineralization, reinforced osteogenic activity, would be a promising candidate for bone tissue regeneration. This study probably provides a novel strategy to design biomimetic elastomeric bioceramic scaffolds for hard tissue regeneration.
机译:三维(3D)印刷多孔生物活性玻璃纳米粒子支架(BGNS)表现出优异的骨集成和骨再生能力,但早期的快速离子释放,脆性机械性能和缺乏功能限制了它们的应用。在这项工作中,通过直接组装BGNS(BGNS @ PC)的聚(柠檬酸硅氧烷)(PC)来制造光致发光的仿生弹性体BGN。详细评估了BGNS @ PCS的形态,力学行为,光致发光能力,离子释放,生物茂化活性,生物相容性和成骨特性。结果表明,与BGN相比,BGNS @ PCS呈现出优异的弹性和出色的抗压强度。达到了BGNS @ PC中的Si和Ca离子的受控释放,并且还观察到增强的生物醛能力。另外,改性的支架具有光致发光能力,其具有对生物分析的潜在应用。 BGNS @ PC可以显着促进细胞附着,增殖和增强小鼠骨髓基质细胞(BMSC)的骨质发生分化。因此,BGNS @ PC具有包括弹性体表面,增强的光致发光,受控离子释放和生物矿化,增强骨质发生活性的多功能性质,是骨组织再生的有希望的候选者。该研究可能提供了一种设计用于硬组织再生的生物摩托的弹性体杀菌支架的新策略。

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