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A novel osteochondral composite consisting of a self-assembling peptide hydrogel and 3D printed polycaprolactone scaffold : potential for articular cartilage repair

机译:一种新型骨软骨复合材料,由自组装肽水凝胶和3D打印聚己内酯支架组成:关节软骨修复的潜力

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摘要

Degenerative diseases, such as osteoarthritis, and traumatic injuries are both prominent causes of cartilage defects. Due to its avascular nature, adult human cartilage displays limited capacity for regeneration. Current surgical treatments to induce a spontaneous repair response rely on access to the subchondral bone region. These procedures result in fibrocartilage generation, as opposed to hyaline cartilage, that is variable in structure, composition, and durability. Furthermore, the success rates of these surgeries are also variable. Deficiencies in these cartilage repair methods motivate investigation into a tissue engineering means of repairing or regenerating cartilage. Various composites designed to emulate a cartilage and bone interface are under investigation. The aim of this study was to conceive a means of integrating a chondrocyte-seeded peptide hydrogel with an interconnected porous 3D printed polycaprolactone (PCL) scaffold to create a novel osteochondral construct. The self-assembling peptide hydrogel has been shown to provide an environment that maintains chondrocyte phenotype and viability. Furthermore, the 3D scaffold fosters extracellular matrix production and chondrocyte division. PCL is a bioresorbable and biocompatible polymer scaffold, capable of supporting the attachment of both osteogenic and chondrogenic cells and cell-specific extracellular matrix production, that can be integrated with the peptide hydrogel to constitute an osteochondral construct. A primary advantage of the 3D printing technology is the ability to control the microarchitecture and macroarchitecture of the PCL scaffold in a layer by layer fashion. Integration of the peptide hydrogel into the porous PCL scaffold may be enhanced by creating a gradient of porosity
机译:退化性疾病(例如骨关节炎)和外伤都是软骨缺陷的重要原因。由于其无血管性质,成人软骨显示出有限的再生能力。当前引起自发修复反应的外科手术治疗依赖于进入软骨下骨区域。与透明软骨相反,这些程序导致纤维软骨的生成,其结构,组成和耐久性是可变的。此外,这些手术的成功率也是可变的。这些软骨修复方法的不足促使人们对修复或再生软骨的组织工程手段进行研究。正在研究各种旨在模拟软骨和骨骼界面的复合材料。这项研究的目的是构想一种方法,将软骨细胞播种的肽水凝胶与互连的多孔3D打印聚己内酯(PCL)支架整合在一起,以创建新型的骨软骨构建体。已经表明,自组装肽水凝胶可提供维持软骨细胞表型和生存能力的环境。此外,3D支架促进细胞外基质的产生和软骨细胞的分裂。 PCL是一种生物可吸收和生物相容性聚合物支架,能够支持成骨细胞和软骨细胞的附着以及细胞特异性细胞外基质的产生,可以与肽水凝胶整合以构成骨软骨构建体。 3D打印技术的主要优势在于能够以逐层方式控制PCL支架的微体系结构和宏观体系结构。可以通过创建孔隙率梯度来增强肽水凝胶到多孔PCL支架中的整合

著录项

  • 作者

    Saatchi Sanaz 1980-;

  • 作者单位
  • 年度 2004
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  • 原文格式 PDF
  • 正文语种 eng
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