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3D bioprinting of a biomimetic meniscal scaffold for application in tissue engineering

机译:3D生物摩擦半月板支架的应用用于组织工程中的应用

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摘要

Appropriate biomimetic scaffolds created via 3D bioprinting are promising methods for treating damaged menisci. However, given the unique anatomical structure and complex stress environment of the meniscus, many studies have adopted various techniques to take full advantage of different materials, such as the printing combined with infusion, or electrospining, to chase the biomimetic meniscus, which makes the process complicated to some extent. Some researchers have tried to tackle the challenges only by 3D biopringting, while its alternative materials and models have been constrained. In this study, based on a multilayer biomimetic strategy, we optimized the preparation of meniscus-derived bioink, gelatin methacrylate (GelMA)/meniscal extracellular matrix (MECM), to take printability and cytocompatibility into account together. Subsequently, a customized 3D bioprinting system featuring a dual nozzle + multitemperature printing was used to integrate the advantages of polycaprolactone (PCL) and meniscal fibrocartilage chondrocytes (MFCs)-laden GelMA/MECM bioink to complete the biomimetic meniscal scaffold, which had the best biomimetic features in terms of morphology and components. Furthermore, cell viability, mechanics, biodegradation and tissue formation in vivo were performed to ensure that the scaffold had sufficient feasibility and functionality, thereby providing a reliable basis for its application in tissue engineering.
机译:通过3D BioPlint产生的适当的仿生仿生支架是治疗受损半月斑的有希望的方法。然而,鉴于弯月面的独特解剖结构和复合应力环境,许多研究采用了各种技术,以充分利用不同的材料,例如印刷与输注或电动起动,追逐生物纤细的弯月面,这使得该过程成为这种过程在某种程度上复杂化。一些研究人员试图仅通过3D Bieplingting解决挑战,而其替代材料和模型受到限制。在这项研究中,基于多层杀菌策略,我们优化了弯月球衍生的生物膜,明胶甲基丙烯酸酯(GELMA)/半月体细胞外基质(MECM)的制备,以便在一起进行可印刷性和细胞偶联。随后,使用具有双喷嘴+多温度印刷的定制的3D生物印刷系统来整合聚己内酯(PCL)和半月板纤维植物软骨细胞(MFCS) - 稀胶纤维纤维/ MECM Bioink的优点,以完成仿生模拟的仿生摩托的支架形态和组件方面的特征。此外,进行细胞活力,力学,生物降解和组织形成,以确保支架具有足够的可行性和功能,从而为其在组织工程中的应用提供可靠的依据。

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