Wu Shuo, Wang Zongliang, Wang Yu, Guo Min, Zhou Mengyang, Wang Liqiang, Ma Jie, Zhang Peibiao
School of Pharmaceutical Sciences, Jilin University, Changchun, China.
Key Laboratory of Polymer Ecomaterials, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, China.
Front Bioeng Biotechnol. 2022 Apr 12;10:873125. doi: 10.3389/fbioe.2022.873125. eCollection 2022.
Mesenchymal stem cells (MSCs) have considerable value in regenerative medicine because of their unique properties such as pluripotency, self-renewal ability, and low immunogenicity. Isolation and purification are prerequisites for various biomedical applications of MSCs, and traditional sorting methods are often expensive, complicated, and difficult to apply on a large scale. In addition to purification, the requirement for expansion of cells also limits the further application of MSCs. The purpose of this study was to develop a unique magnetic sorting microsphere to obtain relatively pure and high-yield MSCs in an economical and effective way, that can also be used for the expansion of MSCs. Poly (ethylene glycol) (PEG)-based anti-adhesive treatment of the prepared oleic acid grafted FeO-poly (lactic-co-glycolic acid) magnetic microspheres was performed, and then E7 peptide was covalently grafted onto the treated microspheres. Upon a series of characterization, the magnetic microspheres were of uniform size, and cells were unable to adhere to the PEG-treated surface. E7 grafting significantly improved cell adhesion and proliferation. The results obtained from separate culture of various cell types as well as static or dynamic co-culture showed that selective adhesion of MSCs was observed on the magnetic sorting microspheres. Furthermore, the cells expanded on the microspheres maintained their phenotype and typical differentiation potentials. The magnetic properties of the microspheres enabled sampling, distribution, and transfer of cells without the usage of trypsin digestion. And it facilitated the separation of cells and microspheres for harvesting of MSCs after digestion. These findings have promising prospects for MSC research and clinical applications.
间充质干细胞(MSCs)因其多能性、自我更新能力和低免疫原性等独特特性,在再生医学中具有重要价值。分离和纯化是MSCs各种生物医学应用的前提条件,而传统的分选方法往往成本高昂、操作复杂且难以大规模应用。除了纯化,细胞扩增的需求也限制了MSCs的进一步应用。本研究的目的是开发一种独特的磁性分选微球,以经济有效的方式获得相对纯净且高产的MSCs,同时还可用于MSCs的扩增。对制备的油酸接枝的FeO-聚(乳酸-乙醇酸)磁性微球进行基于聚(乙二醇)(PEG)的抗粘附处理,然后将E7肽共价接枝到处理后的微球上。经过一系列表征,磁性微球尺寸均匀,细胞无法粘附在PEG处理的表面。E7接枝显著改善了细胞粘附和增殖。对各种细胞类型进行单独培养以及静态或动态共培养所获得的结果表明,在磁性分选微球上观察到了MSCs的选择性粘附。此外,在微球上扩增的细胞保持了其表型和典型的分化潜能。微球的磁性使得细胞的取样、分布和转移无需使用胰蛋白酶消化。并且在消化后便于细胞与微球的分离以收获MSCs。这些发现为MSCs的研究和临床应用带来了广阔前景。