间充质干细胞
机械转化
细胞生物学
干细胞
生物医学工程
脚手架
组织工程
生物反应器
化学
材料科学
生物
医学
有机化学
作者
Penelope Tsimbouri,Peter Childs,Gabriel D. Pemberton,Jingli Yang,Vineetha Jayawarna,Wich Orapiriyakul,Karl Burgess,Cristina González‐García,Gavin Blackburn,Dilip Thomas,Catalina Vallejo‐Giraldo,Manus Biggs,A. S. G. Curtis,Manuel Salmerón‐Sánchez,S. Reid,Matthew J. Dalby
标识
DOI:10.1038/s41551-017-0127-4
摘要
Bone grafts are one of the most commonly transplanted tissues. However, autologous grafts are in short supply, and can be associated with pain and donor-site morbidity. The creation of tissue-engineered bone grafts could help to fulfil clinical demand and provide a crucial resource for drug screening. Here, we show that vibrations of nanoscale amplitude provided by a newly developed bioreactor can differentiate a potential autologous cell source, mesenchymal stem cells (MSCs), into mineralized tissue in 3D. We demonstrate that nanoscale mechanotransduction can stimulate osteogenesis independently of other environmental factors, such as matrix rigidity. We show this by generating mineralized matrix from MSCs seeded in collagen gels with stiffness an order of magnitude below the stiffness of gels needed to induce bone formation in vitro. Our approach is scalable and can be compatible with 3D scaffolds.
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