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用于肌腱组织工程的3D多层支架的机械和生化刺激

Mechanical and Biochemical Stimulation of 3D Multilayered Scaffolds for Tendon Tissue Engineering.

作者信息

Rinoldi Chiara, Fallahi Afsoon, Yazdi Iman K, Campos Paras Jessica, Kijeńska-Gawrońska Ewa, Trujillo-de Santiago Grissel, Tuoheti Abuduwaili, Demarchi Danilo, Annabi Nasim, Khademhosseini Ali, Swieszkowski Wojciech, Tamayol Ali

机构信息

Materials Design Division, Faculty of Materials Science and Engineering, Warsaw University of Technology, 141 Woloska Street, Warsaw 02-507, Poland.

Biomaterials Innovation Research Center, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, 65 Landsdowne Street, Boston, Massachusetts 02139, United States.

出版信息

ACS Biomater Sci Eng. 2019 Jun 10;5(6):2953-2964. doi: 10.1021/acsbiomaterials.8b01647. Epub 2019 May 28.

Abstract

Tendon injuries are frequent and occur in the elderly, young, and athletic populations. The inadequate number of donors combined with many challenges associated with autografts, allografts, xenografts, and prosthetic devices have added to the value of engineering biological substitutes, which can be implanted to repair the damaged tendons. Electrospun scaffolds have the potential to mimic the native tissue structure along with desired mechanical properties and, thus, have attracted noticeable attention. In order to improve the biological responses of these fibrous structures, we designed and fabricated 3D multilayered composite scaffolds, where an electrospun nanofibrous substrate was coated with a thin layer of cell-laden hydrogel. The whole construct composition was optimized to achieve adequate mechanical and physical properties as well as cell viability and proliferation. Mesenchymal stem cells (MSCs) were differentiated by the addition of bone morphogenetic protein 12 (BMP-12). To mimic the natural function of tendons, the cell-laden scaffolds were mechanically stimulated using a custom-built bioreactor. The synergistic effect of mechanical and biochemical stimulation was observed in terms of enhanced cell viability, proliferation, alignment, and tenogenic differentiation. The results suggested that the proposed constructs can be used for engineering functional tendons.

摘要

肌腱损伤很常见,发生于老年人、年轻人和运动员群体中。供体数量不足,再加上自体移植、异体移植、异种移植和假体装置存在的诸多挑战,增加了工程化生物替代物的价值,这种替代物可植入体内修复受损肌腱。电纺支架有潜力模仿天然组织结构并具备所需的力学性能,因此受到了显著关注。为改善这些纤维结构的生物学反应,我们设计并制作了三维多层复合支架,其中电纺纳米纤维基质涂覆有一层载细胞水凝胶薄层。对整个构建体的组成进行了优化,以实现足够的力学和物理性能以及细胞活力和增殖。通过添加骨形态发生蛋白12(BMP - 12)使间充质干细胞(MSCs)分化。为模拟肌腱的自然功能,使用定制生物反应器对载细胞支架进行力学刺激。在增强细胞活力、增殖、排列和肌腱分化方面观察到了力学和生化刺激的协同效应。结果表明,所提出的构建体可用于工程化功能性肌腱。

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