Bioactive TGF-β1/HA Alginate-Based Scaffolds for Osteochondral Tissue Repair: Design, Realization and Multilevel Characterization

Luca Coluccino, P. Stagnaro, M. Vassalli, S. Scaglione
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引用次数: 30

Abstract

Background The design of an appropriate microenvironment for stem cell differentiation constitutes a multitask mission and a critical step toward the clinical application of tissue substitutes. With the aim of producing a bioactive material for orthopedic applications, a transforming growth factor-β (TGF- β1)/hydroxyapatite (HA) association within an alginate-based scaffold was investigated. The bioactive scaffold was carefully designed to offer specific biochemical cues for an efficient and selective cell differentiation toward the bony and chondral lineages. Methods Highly porous alginate scaffolds were fabricated from a mixture of calcium cross-linked alginates by means of a freeze-drying technique. In the chondral layer, the TGF in citric acid was mixed with an alginate/alginate-sulfate solution. In the bony layer, HA granules were added as bioactive signal, to offer an osteoinductive surface to the cells. Optical and scanning electron microscopy analyses were performed to assess the macro-micro architecture of the biphasic scaffold. Different mechanical tests were conducted to evaluate the elastic modulus of the grafts. For the biological validation of the developed prototype, mesenchymal stem cells were loaded onto the samples; cellular adhesion, proliferation and in vivo biocompatibility were evaluated. Results and conclusions The results successfully demonstrated the efficacy of the designed osteochondral graft, which combined interesting functional properties and biomechanical performances, thus becoming a promising candidate for osteochondral tissue-engineering applications.
基于海藻酸盐的生物活性TGF-β1/HA骨软骨组织修复支架:设计、实现和多层次表征
设计适合干细胞分化的微环境是一项多任务任务,也是组织替代品临床应用的关键一步。为了生产用于骨科应用的生物活性材料,研究了海藻酸盐支架中转化生长因子-β (TGF- β1)/羟基磷灰石(HA)的结合。该生物活性支架经过精心设计,为骨和软骨谱系的有效和选择性细胞分化提供了特定的生化线索。方法采用冷冻干燥法制备交联藻酸钙复合材料制备高孔藻酸钙支架。在软骨层中,将柠檬酸中的TGF与海藻酸盐/海藻酸盐-硫酸盐溶液混合。在骨层中,加入透明质酸颗粒作为生物活性信号,为细胞提供骨诱导表面。通过光学和扫描电镜分析来评估双相支架的宏观微观结构。通过不同的力学试验来评估移植物的弹性模量。为了对所开发的原型进行生物学验证,将间充质干细胞装载到样品上;观察细胞粘附、增殖和体内生物相容性。结果与结论所设计的骨软骨移植物结合了有趣的功能特性和生物力学性能,因此成为骨软骨组织工程应用的有前景的候选材料。
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来源期刊
Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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