材料科学
纳米技术
粘附
脚手架
细胞粘附
体内
药物输送
生物相容性材料
体外
炎症
微泡
细胞
生物医学工程
细胞生物学
药理学
干细胞
细胞生长
活力测定
作者
Luyao Feng,Bin Zhu,Zhenni Liu,Rui Jia,Yurong Chen,Yiming Ren,Ye Zhu,Ye Zhu,Raghvendra A. Bohara,Ming Bao,Wanglin Duan,Xiaoyu Wu,Zhengtao Xiao,Ting Wang,Yixiao Dou,Baoji Du,Jinqing Li,Yuan Zhu,Yuan Zhu,Yazhong Bu
标识
DOI:10.1002/adfm.202514793
摘要
Abstract Intrauterine adhesions (IUA) are characterized by fibrotic repair and partial or complete occlusion of the uterine cavity, resulting from endometrial damage. The occurrence of IUA can adversely affect the reproductive and physiological health of women. Developing a delivery platform capable of loading various bioactive agents to achieve personalized treatment strategies can significantly enhance IUA therapy. In this study, cryopolymerization is employed to fabricate an antifouling porous scaffold (GNP) with shape memory properties, serving as a delivery vehicle for bioactive agents. Both in vitro and in vivo experiments demonstrate that GNP can incorporate multiple bioactive agents (penicillin‐streptomycin (PS), stem cell exosomes (Ex) and N‐acetylcysteine (NAC)), and promote their sustained retention. Based on the core factors of adhesion formation, the antioxidant NAC is chosen as a model agent combined with GNP. In the rat IUA model, NAC‐loaded GNP (P150N) modulates the endometrial microenvironment through its antioxidant, anti‐inflammatory, and anti‐fibrotic actions. P150N effectively facilitates endometrial regeneration, reduces adhesion formation, and significantly increases embryo implantation rates. Additionally, proteomics analysis reveals that the P150N significantly downregulates proteins associated with inflammation, oxidative stress, and fibrosis, while upregulating those involved in cell proliferation. Overall, this work presents a versatile platform, offering a potential personalized therapeutic strategy for IUA prevention.
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