Hosseini Seyedeh Roghayeh, Hashemi-Najafabadi Sameereh, Bagheri Fatemeh
Biomedical Engineering Department, Faculty of Chemical Engineering, Tarbiat Modares University, P.O. Box: 14115-114, Tehran, 1411713116, I.R. of Iran.
Biotechnology Department, Faculty of Chemical Engineering, Tarbiat Modares University, Tehran, 1411713116, I.R. of Iran.
Prog Biomater. 2022 Sep;11(3):273-280. doi: 10.1007/s40204-022-00194-7. Epub 2022 Jul 8.
Cell therapy is one of the proposed treatments for diabetes. Cell encapsulation and differentiation inside the biodegradable polymers overcome the limitations such as islet deficiency and the host immune responses. This study was set to encapsulate the mesenchymal stem cells (MSCs) and differentiate them into insulin-producing cells (IPCs). Human bone marrow-mesenchymal stem cells (hBM-MSCs) were encapsulated in alginate/trimethyl chitosan/alginate (Alg/TMC/Alg) coating. At first, morphology and swelling properties of the cell-free microcapsules were investigated. Next, a three-step protocol was used in the presence of exendin-4 and nicotinamide to differentiate hBM-MSCs into IPCs. Viability of the encapsulated cells was investigated using MTT assay. The differentiated cells were analyzed using a real-time RT-PCR to investigate Glut-2, Insulin, Pdx-1, Ngn-3, nestin, and Isl-1 gene expression. The results revealed that differentiation of the encapsulated cells was higher than non-encapsulated cells. Also, dithizone staining in two-dimensional (2D) environment showed the differentiated cell clusters. In summary, here, hBM-MSCs after encapsulation in Alg/TMC/Alg microcapsules, as a new design, were differentiated properly in the presence of exendin-4 and nicotinamide as main inducers. A three-dimensional (3D) matrix is more similar to the native ECM in the body and prepares higher cell-cell contacts.
细胞疗法是针对糖尿病提出的治疗方法之一。生物可降解聚合物内部的细胞封装和分化克服了诸如胰岛缺乏和宿主免疫反应等局限性。本研究旨在封装间充质干细胞(MSCs)并将其分化为胰岛素生成细胞(IPCs)。人骨髓间充质干细胞(hBM-MSCs)被封装在藻酸盐/三甲基壳聚糖/藻酸盐(Alg/TMC/Alg)涂层中。首先,研究了无细胞微胶囊的形态和溶胀特性。接下来,在艾塞那肽-4和烟酰胺存在的情况下,采用三步方案将hBM-MSCs分化为IPCs。使用MTT法研究封装细胞的活力。使用实时RT-PCR分析分化细胞,以研究Glut-2、胰岛素、Pdx-1、Ngn-3、巢蛋白和Isl-1基因的表达。结果显示,封装细胞的分化程度高于未封装细胞。此外,在二维(2D)环境中的双硫腙染色显示了分化的细胞簇。总之,在这里,作为一种新的设计,hBM-MSCs在封装于Alg/TMC/Alg微胶囊后,在作为主要诱导剂的艾塞那肽-4和烟酰胺存在的情况下得到了适当的分化。三维(3D)基质更类似于体内的天然细胞外基质,并提供更高的细胞-细胞接触。