Sun Jimin, Ren Yafeng, Wang Weibin, Hao Huili, Tang Mingyu, Zhang Zibo, Yang Jianmin, Zheng Yunquan, Shi XianAi
College of Biological Science and Engineering, Fuzhou University, No. 2 Xueyuan Road, Fuzhou 350108, China.
Fujian Key Lab of Medical Instrument and Biopharmaceutical Technology, Fuzhou University, No. 2 Xueyuan Road, Fuzhou 350108, China.
ACS Biomater Sci Eng. 2020 Apr 13;6(4):2336-2345. doi: 10.1021/acsbiomaterials.0c00044. Epub 2020 Mar 20.
Mammalian cells are extremely vulnerable to external assaults compared with plant and microbial cells because of the weakness of cell membranes compared with cell walls. Construction of ultrathin and robust artificial shells on mammalian cells with biocompatible materials is a promising strategy for protecting single cells against harsh environmental conditions. Herein, layer-by-layer assembly combined with a transglutaminase-catalyzed cross-linking reaction was employed to prepare cross-linked and biocompatible gelatin nanoshells on individual human cervical carcinoma cell line (HeLa) cells and mouse insulinoma cell line 6 (MIN6) cells. The encapsulated HeLa and MIN6 cells showed high viability and a prolonged encapsulation period. Moreover, the nanoshells can protect encapsulated cells from cytotoxic enzymes (such as trypsin) and polycation (polyethylenimine) attacks and help cells resist high physical stress. We also investigated how nanoshells would affect the cell viability, proliferation, and cell cycle distribution of encapsulated and released cells. The approach presented here may provide a new and versatile method for nanoencapsulation of individual mammalian cells, which would help cells endure various environmental stresses and thereby expand the application field of isolated mammalian cells.
与植物和微生物细胞相比,哺乳动物细胞极易受到外部攻击,因为与细胞壁相比,细胞膜较为脆弱。用生物相容性材料在哺乳动物细胞上构建超薄且坚固的人工外壳,是保护单细胞免受恶劣环境条件影响的一种很有前景的策略。在此,采用层层组装结合转谷氨酰胺酶催化的交联反应,在人宫颈癌细胞系(HeLa)细胞和小鼠胰岛素瘤细胞系6(MIN6)细胞上制备交联且具有生物相容性的明胶纳米壳。被包裹的HeLa细胞和MIN6细胞显示出高活力和延长的包裹期。此外,纳米壳可以保护被包裹的细胞免受细胞毒性酶(如胰蛋白酶)和聚阳离子(聚乙烯亚胺)的攻击,并帮助细胞抵抗高物理应力。我们还研究了纳米壳如何影响被包裹和释放细胞的细胞活力、增殖及细胞周期分布。本文提出的方法可能为单个哺乳动物细胞的纳米封装提供一种新的通用方法,这将帮助细胞承受各种环境压力,从而扩大分离的哺乳动物细胞的应用领域。