Chen Zhi, Song Xiaoxia, Mu Xueliang, Zhang Junkai, Cheang U Kei
Department of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen 518055, China.
Shenzhen Key Laboratory of Biomimetic Robotics and Intelligent Systems, Southern University of Science and Technology, Shenzhen 518055, China.
ACS Appl Mater Interfaces. 2023 Feb 8. doi: 10.1021/acsami.2c18955.
Cell delivery using magnetic microswimmers is a promising tool for targeted therapy. However, it remains challenging to rapidly and uniformly manufacture cell-loaded microswimmers that can be assembled into cell-supporting structures at diseased sites. Here, rapid and uniform manufacturable 2D magnetic achiral microswimmers with pores were fabricated to deliver bone marrow mesenchymal stem cells (BMSCs) to regenerate articular-damaged cartilage. Under actuation with magnetic fields, the BMSC-loaded microswimmers take advantage of the achiral structure to exhibit rolling or swimming motions to travel on smooth and rough surfaces, up inclined planes, or in the bulk fluid. Cell viability, proliferation, and differentiation tests performed days after cell seeding verified the microswimmers' biocompatibility. Long-distance targeting and in situ assemblies into 3D cell-supporting structures with BMSC-loaded microswimmers were demonstrated using a knee model and U-shaped wells. Overall, combining the advantages of preparing an achiral 2D structured microswimmer with magnetically driven motility results in a platform for cell transport and constructing 3D cell cultures that can improve cell delivery at lesion sites for biomedical applications.
使用磁性微游动器进行细胞递送是一种很有前景的靶向治疗工具。然而,快速且均匀地制造能够在患病部位组装成细胞支持结构的载细胞微游动器仍然具有挑战性。在此,制备了具有孔隙的快速且可均匀制造的二维磁性非手性微游动器,用于递送骨髓间充质干细胞(BMSC)以再生关节损伤的软骨。在磁场驱动下,载有BMSC的微游动器利用非手性结构在光滑和粗糙表面、向上倾斜平面或在大量流体中表现出滚动或游动运动。细胞接种数天后进行的细胞活力、增殖和分化测试证实了微游动器的生物相容性。使用膝关节模型和U形孔展示了载有BMSC的微游动器的长距离靶向和原位组装成三维细胞支持结构。总体而言,将制备非手性二维结构化微游动器的优势与磁驱动运动性相结合,产生了一个用于细胞运输和构建三维细胞培养物的平台,可改善生物医学应用中病变部位的细胞递送。