Department of Prosthodontics, Ninth People's Hospital, College of Stomatology, Shanghai Jiao Tong University, School of Medicine, Shanghai 200011, People's Republic of China.
Shanghai Engineering Research Center of Advanced Dental Technology and Materials, Shanghai 200011, People's Republic of China.
Biofabrication. 2021 May 7;13(3). doi: 10.1088/1758-5090/abe4c2.
Stem cells play critical roles in tissue repair and regeneration. The construction of stem cell-derived microtissue is a promising strategy for transplanting cells into defects to improve tissue regeneration efficiency. However, rapidly constructing larger microtissues and promoting vascularization to ensure the cellular nutrient supply remain major challenges. Here, we have developed a magnetic device to rapidly construct and regulate millimeter-scale microtissues derived from magnetic nanoparticle-labeled cells. When the microtissue was cultured under a specific magnetic field, the shape of the microtissue could be changed. Importantly, cell proliferation was maintained, and angiogenesis was activated in the process of microtissue deformation. We developed a magnetic control method to treat microtissue, and the implanted microtissue showed excellent vascularization. In brief, this magnetic control technology provides a promising strategy for vascularized regenerative medicine.
干细胞在组织修复和再生中发挥着关键作用。构建干细胞衍生的微组织是将细胞移植到缺陷部位以提高组织再生效率的一种有前途的策略。然而,快速构建更大的微组织并促进血管生成以确保细胞营养供应仍然是主要挑战。在这里,我们开发了一种磁性装置,可快速构建和调节由磁性纳米粒子标记的细胞衍生的毫米级微组织。当微组织在特定磁场下培养时,微组织的形状可以改变。重要的是,在微组织变形过程中维持了细胞增殖并激活了血管生成。我们开发了一种磁性控制方法来处理微组织,植入的微组织显示出良好的血管生成。总之,这种磁控技术为血管再生医学提供了一种有前途的策略。