脂肪组织
脂肪生成
脂肪细胞
间充质干细胞
组织工程
细胞生物学
脂肪组织巨噬细胞
组织培养
白色脂肪组织
生物
体外
细胞培养
生物医学工程
内分泌学
生物化学
医学
遗传学
作者
Haoxiang Chen,Xiaocheng Wang,Jian Wang,Xuelei Shi,Xinghuan Li,Jianlong Wang,Dan Li,Yonghua Zhu,Weihong Tan,Zhikai Tan
出处
期刊:Biofabrication
[IOP Publishing]
日期:2021-05-27
卷期号:13 (3): 035052-035052
被引量:5
标识
DOI:10.1088/1758-5090/ac0610
摘要
There is a critical need to developin vitroculture systems appropriate for the expansion of adipose tissue, in order to gain new insights into metabolic diseases and to assist in the restoration of tissue defects. Conventional two- or three-dimensional (2D or 3D)in vitromodels of adipocytes require a combination of supplements to induce adipocyte maturation that greatly increases the cost of large-scale industrial production. In the present study, a microporous, perforated bacterial cellulose (BC)-assisted culture system was developed that promoted the adhesion, proliferation, and adipogenic differentiation of preadipocytes. Additionally, the system maintained the cells as mature unilocular adipocytesex vivoin normal cell culture medium in long-term culture. All cells were derived from isolated adipose tissue without the use of expensive enzymes for tissue digestion. In contrast to culture in hard tissue culture plates, preadipocytes in the soft 3D environments formed multidimensional interlaced cell contacts, undergoing significant spontaneous lipid accumulation and could be cultured for up to threemonths in maintenance medium. More importantly, the cultured adipose tissue-derived cell bank created here was able to produce injury repair activators that promoted the proliferation of fibroblasts with little fibrosis and the functional differentiation of myoblasts, displaying the potential for use in adipose reconstruction. Thus, the present study demonstrates the potential of a mechanically flexible BC scaffold to generate volume tunable adipose constructs and provides a low-cost and user-friendly strategy for large-scale industrial production of adipose tissue.
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