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首页> 外文期刊>Tissue engineering, Part A >Anisotropic Shape-Memory Alginate Scaffolds Functionalized with Either Type I or Type II Collagen for Cartilage Tissue Engineering
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Anisotropic Shape-Memory Alginate Scaffolds Functionalized with Either Type I or Type II Collagen for Cartilage Tissue Engineering

机译:各向异性形状记忆藻酸盐支架,其具有I型或II型胶原蛋白,用于软骨组织工程

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Regenerating articular cartilage and fibrocartilaginous tissue such as the meniscus is still a challenge in orthopedic medicine. While a range of different scaffolds have been developed for joint repair, none have facilitated the development of a tissue that mimics the complexity of soft tissues such as articular cartilage. Furthermore, many of these scaffolds are not designed to function in mechanically challenging joint environments. The overall goal of this study was to develop a porous, biomimetic, shape-memory alginate scaffold for directing cartilage regeneration. To this end, a scaffold was designed with architectural cues to guide cellular and neo-tissue alignment, which was additionally functionalized with a range of extracellular matrix cues to direct stem cell differentiation toward the chondrogenic lineage. Shape-memory properties were introduced by covalent cross-linking alginate using carbodiimide chemistry, while the architecture of the scaffold was modified using a directional freezing technique. Introducing such an aligned pore structure was found to improve the mechanical properties of the scaffold, and promoted higher levels of sulfated glycosaminoglycans (sGAG) and collagen deposition compared to an isotropic (nonaligned) pore geometry when seeded with adult human stem cells. Functionalization with collagen improved stem cell recruitment into the scaffold and facilitated more homogenous cartilage tissue deposition throughout the construct. Incorporating type II collagen into the scaffolds led to greater cell proliferation, higher sGAG and collagen accumulation, and the development of a stiffer tissue compared to scaffolds functionalized with type I collagen. The results of this study demonstrate how both scaffold architecture and composition can be tailored in a shape-memory alginate scaffold to direct stem cell differentiation and support the development of complex cartilaginous tissues.
机译:再生关节软骨和纤维纤维素组织如弯头症仍然是整形外科药物的挑战。虽然已经开发了一系列不同的支架进行了联合修复,但没有人促进了模仿软组织如关节软骨的复杂性的组织的发展。此外,许多这些支架不设计用于在机械挑战性的联合环境中起作用。本研究的总体目标是开发多孔,仿生形状记忆藻酸盐支架,用于引导软骨再生。为此,用建筑提示设计了支架,以引导细胞和新组织对准,其另外用一系列细胞外基质提示官能化,以将茎细胞分化朝向软骨内谱系引起的。通过使用碳二亚胺化学的共价交联藻酸盐引入形状记忆性能,而使用定向冷冻技术改变支架的结构。发现这种对准的孔结构被发现改善支架的机械性能,并在与成人人干细胞接种时与各向同性(非基本的)孔几何形状促进较高水平的硫酸化糖蛋白聚糖(SGAG)和胶原沉积。用胶原蛋白改善干细胞募集到支架中的官能化,并促进整个构建体中的更均匀的软骨组织沉积。将II型胶原蛋白掺入支架上导致更大的细胞增殖,更高的SGAG和胶原蛋白积累,与用I型胶原蛋白官能化的支架相比脱脂组织的开发。本研究的结果表明,在形状记忆藻酸盐支架中,如何定制脚手架架构和组合物,以直接干细胞分化并支持复杂软骨组织的发育。

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