Xiangxiang Zhang, Jingjing Zhao, Chao Li, Shubin Li, Xuefeng Tang, Wan Zhao, Fukai Liu, Xiaojun Han
A large population suffers from diabetes worldwide. Type I diabetes mellitus results in insulin-deficient hyperglycemia, causing serious health issues. Pancreatic islet transplantation is a promising way to treat type I diabetes. It remains a challenge to obtain the islet spheroid with a core-mantle architecture similar to that of rodent pancreatic islets in vivo. We demonstrate a methodology to produce islet spheroids composed of β and α cells with a core-mantle architecture based on the magneto-Archimedes effect in a high-throughput manner. The core-mantle islet spheroid (CMIS) shows a more sensitive glucose stimulation response and better insulin secretion performance than the mixed islet spheroid at high-glucose conditions, as indicated by the relative mRNA expression levels. The high-throughput toxicity tests on immunosuppressive drugs using CMIS (β:α = 7:3) indicate that mycophenolate mofetil exhibits a less negative effect on cell viability and insulin secretion than rapamycin and tacrolimus. The CMIS (β:α = 7:3) exhibits a better therapeutic effect in treating diabetic mice after transplantation than the other types of islet spheroids, which holds great potential in the clinical treatment of diabetes. The proposed versatile methodology for core-mantle islet spheroids paves the path for fabricating spatially coded tissues with a complicated architecture in the organoid field.