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一种富含 II 型胶原蛋白的高多孔支架,用于治疗软骨缺陷,可增强间充质干细胞的软骨生成和早期软骨基质沉积。

A highly porous type II collagen containing scaffold for the treatment of cartilage defects enhances MSC chondrogenesis and early cartilaginous matrix deposition.

机构信息

Tissue Engineering Research Group, Department of Anatomy & Regenerative Medicine, Royal College of Surgeons in Ireland (RCSI), Dublin, Ireland.

Advanced Materials and Bioengineering Research (AMBER) Centre, RCSI & TCD, Ireland.

出版信息

Biomater Sci. 2022 Feb 15;10(4):970-983. doi: 10.1039/d1bm01417j.

DOI:10.1039/d1bm01417j
PMID:35018931
Abstract

A major challenge in cartilage tissue engineering (TE) is the development of instructive and biomimetic scaffolds capable of driving effective mesenchymal stem cell (MSC) chondrogenic differentiation and robust matrix formation. Type I collagen-based scaffolds are one of the most commonly selected materials given collagen's intrinsic ability to act as an instructive and active biomaterial. However, the chondrogenic potential of these scaffolds does not offer significant improvement over traditional treatments. We propose that taking a biomimetic approach to scaffold development might lead to an improved outcome for enhanced cartilage repair. Therefore, this study aimed to develop innovative type II collagen (CII)-containing scaffolds for enhanced cartilage repair, by incorporating CII and/or hyaluronic acid (HyA) into a type I collagen (CI) framework. Moreover, focus was placed on understanding the potential synergistic effects played by CII in combination with HyA, in terms of MSC chondrogenesis and cartilage-like formation, when both molecules are incorporated into scaffold biomaterials. The newly developed CII-containing scaffold exhibited a highly porous interconnected structure with 99% porosity and similar mechanical properties to previously optimised collagen-based scaffolds. Although all scaffold variants sustained early cartilaginous matrix deposition, the CII-containing scaffolds in the presence of HyA performed best, offering enhanced deposition and distribution of sulphated glycosaminoglycans (sGAG) by day 28. Taken together, the combination of CII and HyA resulted in the development of a biomimetic scaffold with improved chondrogenic benefits. These simple "off-the-shelf" implants hold great promise to direct enhanced tissue regeneration for the treatment of focal cartilage defects.

摘要

在软骨组织工程(TE)中,一个主要挑战是开发具有指导作用和仿生特性的支架,以驱动有效的间充质干细胞(MSC)软骨分化和强健的基质形成。基于 I 型胶原的支架是最常选择的材料之一,因为胶原具有作为指导和活性生物材料的内在能力。然而,这些支架的软骨形成潜力并没有比传统治疗方法有显著改善。我们认为,采用仿生方法开发支架可能会导致增强软骨修复的改善结果。因此,本研究旨在通过将 II 型胶原(CII)和/或透明质酸(HyA)纳入 I 型胶原(CI)框架中,开发用于增强软骨修复的新型 CII 含支架。此外,重点是了解 CII 与 HyA 结合时在 MSC 软骨生成和软骨样形成方面可能发挥的协同作用,当这两种分子被纳入支架生物材料中时。新开发的 CII 含支架具有高度多孔的互连结构,孔隙率为 99%,机械性能与以前优化的胶原基支架相似。尽管所有支架变体都能维持早期软骨基质沉积,但含有 HyA 的 CII 含支架表现最佳,在第 28 天提供了增强的硫酸化糖胺聚糖(sGAG)的沉积和分布。总之,CII 和 HyA 的组合导致了仿生支架的发展,具有增强的软骨形成益处。这些简单的“现成”植入物具有很大的潜力,可用于指导增强组织再生,以治疗局灶性软骨缺损。

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