Ning Liang-Ju, Cui Jing, He Shu-Kun, Hu Ruo-Nan, Yao Xuan, Zhang Yi, Ding Wei, Zhang Yan-Jing, Luo Jing-Cong, Qin Ting-Wu
Laboratory of Stem Cell and Tissue Engineering, Orthopedic Research Institute, State Key Laboratory of Biotherapy and Cancer Center, West China Hospital, Sichuan University and Collaborative Innovation Center of Biotherapy, Chengdu, Sichuan 610041, P.R. China.
Department of Orthopedic Surgery, Orthopedic Research Institute, West China Hospital, Sichuan University, Chengdu, Sichuan 610041, P.R. China.
Regen Biomater. 2022 Apr 20;9:rbac020. doi: 10.1093/rb/rbac020. eCollection 2022.
Developing highly bioactive scaffold materials to promote stem cell migration, proliferation and tissue-specific differentiation is a crucial requirement in current tissue engineering and regenerative medicine. Our previous work has demonstrated that the decellularized tendon slices (DTSs) are able to promote stem cell proliferation and tenogenic differentiation and show certain pro-regenerative capacity for rotator cuff tendon regeneration . In this study, we present a strategy to further improve the bioactivity of the DTSs for constructing a novel highly bioactive tendon-regenerative scaffold by surface modification of tendon-specific stem cell-derived extracellular matrix (tECM), which is expected to greatly enhance the capacity of scaffold material in regulating stem cell behavior, including migration, proliferation and tenogenic differentiation. We prove that the modification of tECM could change the highly aligned surface topographical cues of the DTSs, retain the surface stiffness of the DTSs and significantly increase the content of multiple ECM components in the tECM-DTSs. As a result, the tECM-DTSs dramatically enhance the migration, proliferation as well as tenogenic differentiation of rat bone marrow-derived stem cells compared with the DTSs. Collectively, this strategy would provide a new way for constructing ECM-based biomaterials with enhanced bioactivity for tendon regeneration applications.
开发具有高生物活性的支架材料以促进干细胞迁移、增殖和组织特异性分化是当前组织工程和再生医学的关键需求。我们之前的研究表明,去细胞化肌腱切片(DTSs)能够促进干细胞增殖和向肌腱细胞分化,并对肩袖肌腱再生显示出一定的促再生能力。在本研究中,我们提出了一种策略,通过对肌腱特异性干细胞衍生的细胞外基质(tECM)进行表面修饰,进一步提高DTSs的生物活性,以构建一种新型的高生物活性肌腱再生支架,有望极大地增强支架材料调节干细胞行为的能力,包括迁移、增殖和向肌腱细胞分化。我们证明,tECM的修饰可以改变DTSs高度排列的表面形貌线索,保留DTSs的表面硬度,并显著增加tECM-DTSs中多种细胞外基质成分的含量。结果,与DTSs相比,tECM-DTSs显著增强了大鼠骨髓来源干细胞的迁移、增殖以及向肌腱细胞的分化。总的来说,该策略将为构建具有增强生物活性的基于细胞外基质的生物材料用于肌腱再生应用提供一种新方法。