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纤维增强型软骨细胞外基质功能化生物墨水用于功能性软骨组织工程。

Fiber Reinforced Cartilage ECM Functionalized Bioinks for Functional Cartilage Tissue Engineering.

机构信息

Trinity Centre for Bioengineering, Trinity Biomedical Sciences Institute, Trinity College Dublin, Dublin 2, Ireland.

Department of Mechanical and Manufacturing Engineering, School of Engineering, Trinity College Dublin, Dublin 2, Ireland.

出版信息

Adv Healthc Mater. 2019 Apr;8(7):e1801501. doi: 10.1002/adhm.201801501. Epub 2019 Jan 9.

Abstract

Focal articular cartilage (AC) defects, if left untreated, can lead to debilitating diseases such as osteoarthritis. While several tissue engineering strategies have been developed to promote cartilage regeneration, it is still challenging to generate functional AC capable of sustaining high load-bearing environments. Here, a new class of cartilage extracellular matrix (cECM)-functionalized alginate bioink is developed for the bioprinting of cartilaginous tissues. The bioinks are 3D-printable, support mesenchymal stem cell (MSC) viability postprinting and robust chondrogenesis in vitro, with the highest levels of COLLII and ACAN expression observed in bioinks containing the highest concentration of cECM. Enhanced chondrogenesis in cECM-functionalized bioinks is also associated with progression along an endochondral-like pathway, as evident by increases in RUNX2 expression and calcium deposition in vitro. The bioinks loaded with MSCs and TGF-β3 are also found capable of supporting robust chondrogenesis, opening the possibility of using such bioinks for direct "print-and-implant" cartilage repair strategies. Finally, it is demonstrated that networks of 3D-printed polycaprolactone fibers with compressive modulus comparable to native AC can be used to mechanically reinforce these bioinks, with no loss in cell viability. It is envisioned that combinations of such biomaterials can be used in multiple-tool biofabrication strategies for the bioprinting of biomimetic cartilaginous implants.

摘要

关节内软骨(AC)缺损如果不加以治疗,可能会导致骨关节炎等使人衰弱的疾病。虽然已经开发出几种组织工程策略来促进软骨再生,但仍然难以产生能够承受高承载环境的功能性 AC。在这里,开发了一类新型的软骨细胞外基质(cECM)功能化藻酸盐生物墨水,用于软骨组织的生物打印。生物墨水可 3D 打印,支持间充质干细胞(MSC)在打印后的活力,并在体外进行稳健的软骨生成,在含有最高浓度 cECM 的生物墨水中观察到最高水平的 COLLII 和 ACAN 表达。cECM 功能化生物墨水中增强的软骨生成也与沿着软骨内样途径的进展有关,这表现在 RUNX2 表达和体外钙沉积的增加。负载 MSC 和 TGF-β3 的生物墨水也被发现能够支持稳健的软骨生成,为直接使用这些生物墨水进行“打印和植入”软骨修复策略开辟了可能性。最后,证明了与天然 AC 压缩模量相当的 3D 打印聚己内酯纤维网络可用于机械增强这些生物墨水,而不会损失细胞活力。可以预见的是,这种生物材料的组合可以用于多种工具的生物制造策略,用于仿生软骨植入物的生物打印。

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