Kim Da-Eun, Lee Yu Bin, Shim Hye-Eun, Song Jin Jung, Han Ji-Seok, Moon Kyoung-Sik, Huh Kang Moo, Kang Sun-Woong
Research Group for Biomimetic Advanced Technology, Korea Institute of Toxicology, Daejeon 34114, Republic of Korea.
Department of Polymer Science and Engineering, Chungnam National University, Daejeon 34134, Republic of Korea.
ACS Omega. 2022 May 26;7(22):18471-18480. doi: 10.1021/acsomega.2c00890. eCollection 2022 Jun 7.
Cell culture technology has evolved into three-dimensional (3D) artificial tissue models for better reproduction of human native tissues. However, there are some unresolved limitations that arise due to the adhesive properties of cells. In this study, we developed a hexanoyl glycol chitosan (HGC) as a non-cell adhesive polymer for scaffold-based and -free 3D culture. The uniform cell distribution in a porous scaffold was well maintained during the long culutre period on the HGC-coated substrate by preventing ectopic adhesion and migration of cells on the substrate. In addition, when culturing many spheroids in one dish, supplementation of the culture medium with HGC prevented the aggregation of spheroids and maintained the shape and size of spheroids for a long culture duration. Collectively, the use of HGC in 3D culture systems is expected to contribute greatly to creating excellent regenerative therapeutics and screening models of bioproducts.
细胞培养技术已发展为三维(3D)人工组织模型,以便更好地重现人体天然组织。然而,由于细胞的黏附特性,仍存在一些未解决的局限性。在本研究中,我们开发了一种己酰化壳聚糖(HGC)作为用于基于支架和无支架3D培养的非细胞黏附聚合物。通过防止细胞在底物上的异位黏附和迁移,在HGC包被的底物上进行长时间培养期间,多孔支架中的细胞均匀分布得到了良好维持。此外,当在一个培养皿中培养多个球体时,在培养基中添加HGC可防止球体聚集,并在长时间培养过程中保持球体的形状和大小。总体而言,在3D培养系统中使用HGC有望极大地促进创建出色的再生疗法和生物制品筛选模型。