School of Chemical and Biological Engineering, Institute of Chemical Processes, Seoul National University, Seoul 08826, Republic of Korea.
Department of Bioengineering, College of Engineering, Hanyang University, Seoul 04763, Republic of Korea.
Sci Adv. 2021 Jun 23;7(26). doi: 10.1126/sciadv.abf7832. Print 2021 Jun.
Pancreatic β cell therapy for type 1 diabetes is limited by low cell survival rate owing to physical stress and aggressive host immune response. In this study, we demonstrate a multilayer hydrogel nanofilm caging strategy capable of protecting cells from high shear stress and reducing immune response by interfering cell-cell interaction. Hydrogel nanofilm is fabricated by monophenol-modified glycol chitosan and hyaluronic acid that cross-link each other to form a nanothin hydrogel film on the cell surface via tyrosinase-mediated reactions. Furthermore, hydrogel nanofilm formation was conducted on mouse β cell spheroids for the islet transplantation application. The cytoprotective effect against physical stress and the immune protective effect were evaluated. Last, caged mouse β cell spheroids were transplanted into the type 1 diabetes mouse model and successfully regulated its blood glucose level. Overall, our enzymatic cross-linking-based hydrogel nanofilm caging method will provide a new platform for clinical applications of cell-based therapies.
用于 1 型糖尿病的胰岛β细胞治疗受到细胞存活率低的限制,这是由于物理应激和侵袭性宿主免疫反应所致。在这项研究中,我们展示了一种多层水凝胶纳米膜笼状策略,该策略能够通过干扰细胞间相互作用来保护细胞免受高剪切应力和减少免疫反应。水凝胶纳米膜是通过单酚修饰的乙二醇壳聚糖和透明质酸制备的,它们通过酪氨酸酶介导的反应在细胞表面交联形成纳米薄的水凝胶膜。此外,水凝胶纳米膜的形成是在小鼠胰岛β细胞球上进行的,用于胰岛移植应用。评估了其对物理应激的细胞保护作用和免疫保护作用。最后,将笼状的小鼠胰岛β细胞球移植到 1 型糖尿病小鼠模型中,成功调节了其血糖水平。总的来说,我们基于酶交联的水凝胶纳米膜笼状方法将为基于细胞的治疗的临床应用提供一个新的平台。