College of Chemistry, State Key Laboratory of Elemento-Organic Chemistry, Nankai University, Tianjin 300071, China.
Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Tianjin 300072, China.
ACS Appl Mater Interfaces. 2021 Mar 3;13(8):9580-9588. doi: 10.1021/acsami.0c19428. Epub 2021 Feb 18.
Precise assembly of the cytoskeleton (., actin, tubulin, and intermediate filaments) is of great importance for stem cell polarization and tissue regeneration. Recently, artificial manipulation of cytoskeleton assembly for remodeling stem cell polarization and ultimate cell fates attracts more and more interest of both chemists and biologists. Herein, we report the magnetic field-directed formation of biocompatible supramolecular polymeric nanofibers composed of two subunits: a β-cyclodextrin-bearing hyaluronic acid host polymer (HACD) and magnetic nanoparticles modified with actin-binding peptide and adamantane (MS-ABPAda). Transmission electron microscopy indicated that when HACD and MS-ABPAda were exposed to a magnetic field, they self-assembled into long nanofibers along the direction of the magnetic field, and the rate of nanofiber formation was linearly correlated with the strength of the magnetic field. Interestingly, when incubated with dental pulp stem cells, the nanofibers specifically drove tip extension and polarization of the cells, a phenomenon that can be attributed to targeting of actin-binding peptide to the actin cytoskeleton and subsequent polarization of the nanofibers. The successful application of these magnetic field-responsive supramolecular polymers on accurately driving polarization of mammalian cells is expected to be of great value for artificially manipulating cell fate and developing intelligent responsive materials in regenerative medicine.
细胞骨架(例如肌动蛋白、微管和中间丝)的精确组装对于干细胞极化和组织再生非常重要。最近,人工操纵细胞骨架组装以重塑干细胞极化和最终细胞命运引起了化学家和生物学家越来越多的兴趣。在此,我们报告了由两个亚基组成的生物相容性超分子聚合物纳米纤维的磁场定向形成:带有β-环糊精的透明质酸主链聚合物(HACD)和用肌动蛋白结合肽和金刚烷改性的磁性纳米颗粒(MS-ABPAda)。透射电子显微镜表明,当 HACD 和 MS-ABPAda 暴露于磁场中时,它们沿着磁场的方向自组装成长纳米纤维,并且纳米纤维形成的速率与磁场的强度呈线性相关。有趣的是,当与牙髓干细胞孵育时,纳米纤维特异性地驱动细胞的尖端延伸和极化,这种现象可以归因于肌动蛋白结合肽靶向肌动蛋白细胞骨架以及随后的纳米纤维极化。这些对磁场有响应的超分子聚合物在精确驱动哺乳动物细胞极化方面的成功应用有望在人为操纵细胞命运和开发再生医学中的智能响应材料方面具有重要价值。