明胶
自愈水凝胶
材料科学
伤口愈合
干细胞
生物医学工程
PEG比率
血管生成
乙二醇
组织工程
细胞
再生(生物学)
细胞生物学
医学
化学
癌症研究
外科
生物
高分子化学
生物化学
经济
有机化学
财务
作者
Yixiao Dong,A Sigen,Mélanie Rodrigues,Xiaolin Li,Sun Hyung Kwon,Nina Kosaric,Sacha Khong,Yongsheng Gao,Wenxin Wang,Geoffrey C. Gurtner
标识
DOI:10.1002/adfm.201606619
摘要
Stem cells have shown substantial promise for various diseases in preclinical and clinical trials. However, low cell engraftment rates significantly limit the clinical translation of stem cell therapeutics. Numerous injectable hydrogels have been developed to enhance cell retention. Yet, the design of an ideal material with tunable properties that can mimic different tissue niches and regulate stem cell behaviors remains an unfulfilled promise. Here, an injectable poly(ethylene glycol) (PEG)–gelatin hydrogel is designed with highly tunable properties, from a multifunctional PEG‐based hyperbranched polymer and a commercially available thiolated gelatin. Spontaneous gelation occurs within about 2 min under the physiological condition. Murine adipose‐derived stem cells (ASCs) can be easily encapsulated into the hydrogel, which supports ASC growth and maintains their stemness. The hydrogel mechanical properties, biodegradability, and cellular responses can be finely controlled by changing hydrogel formulation and cell seeding densities. An animal study shows that the in situ formed hydrogel significantly improves cell retention, enhances angiogenesis, and accelerates wound closure using a murine wound healing model. These data suggest that injectable PEG–gelatin hydrogel can be used for regulating stem cell behaviors in 3D culture, delivering cells for wound healing and other tissue regeneration applications.
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