Hu Guanhuai, Liang Zhuo, Fan Zhenlin, Yu Mengyuan, Pan Qingqing, Nan Yan, Zhang Wei, Wang Lei, Wang Xiansong, Hua Yujie, Zhou Guangdong, Ren Wenjie
Institutes of Health Central Plain, The Third Affiliated Hospital of Xinxiang Medical University, Clinical Medical Center of Tissue Engineering and Regeneration, Xinxiang Medical University, Xinxiang, Henan, 453003, PR China.
Department of Plastic and Reconstructive Surgery, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai Key Laboratory of Tissue Engineering, Shanghai, 200011, PR China.
Mater Today Bio. 2023 Jun 9;21:100695. doi: 10.1016/j.mtbio.2023.100695. eCollection 2023 Aug.
Three-dimensional (3D) bioprinted cartilage-mimicking substitutes for full-thickness articular cartilage defect repair have emerged as alternatives to defect repair models. However, there has been very limited breakthrough in cartilage regeneration based on 3D bioprinting owing to the lack of ideal bioinks with printability, biocompatibility, bioactivity, and suitable physicochemical properties. In contrast to animal-derived natural polymers or acellular matrices, human-derived Wharton's jelly is biocompatible and hypoimmunogenic with an abundant source. Although acellular Wharton's jelly can mimic the chondrogenic microenvironment, it remains challenging to prepare both printable and biologically active bioinks from this material. Here, we firstly prepared methacryloyl-modified acellular Wharton's jelly () using a previously established photo-crosslinking strategy. Subsequently, we combined methacryloyl-modified gelatin with to obtain a hybrid hydrogel that exhibited both physicochemical properties and biological activities that were suitable for 3D bioprinting. Moreover, bone marrow mesenchymal stem cell-loaded 3D-bioprinted cartilage-mimicking substitutes had superior advantages for the survival, proliferation, spreading, and chondrogenic differentiation of bone marrow mesenchymal stem cells, which enabled satisfactory repair of a model of full-thickness articular cartilage defect in the rabbit knee joint. The current study provides a novel strategy based on 3D bioprinting of cartilage-mimicking substitutes for full-thickness articular cartilage defect repair.
用于全层关节软骨缺损修复的三维(3D)生物打印软骨模拟替代物已成为缺损修复模型的替代方案。然而,由于缺乏具有可打印性、生物相容性、生物活性和合适物理化学性质的理想生物墨水,基于3D生物打印的软骨再生进展非常有限。与动物来源的天然聚合物或脱细胞基质相比,人源的脐带华通氏胶具有生物相容性且免疫原性低,来源丰富。尽管脱细胞脐带华通氏胶可以模拟软骨形成微环境,但用这种材料制备既具有可打印性又具有生物活性的生物墨水仍然具有挑战性。在此,我们首先使用先前建立的光交联策略制备了甲基丙烯酰化修饰的脱细胞脐带华通氏胶()。随后,我们将甲基丙烯酰化修饰的明胶与相结合,获得了一种杂化水凝胶,其表现出适合3D生物打印的物理化学性质和生物活性。此外,负载骨髓间充质干细胞的3D生物打印软骨模拟替代物对骨髓间充质干细胞的存活、增殖、铺展和软骨分化具有显著优势,能够令人满意地修复兔膝关节全层关节软骨缺损模型。本研究为全层关节软骨缺损修复的软骨模拟替代物的3D生物打印提供了一种新策略。