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Paintable graphene oxide-hybridized soy protein-based biogels for skin radioprotection

哈卡特 没食子酸 大豆蛋白 化学 伤口愈合 生物化学 抗氧化剂 生物 体外 免疫学
作者
Daijun Zhou,Hui Liu,Lu Han,Di Liu,Xiaomei Liu,Qingyan Yan,Dan He,Zhihui Li,Xiong Lu,Chaoyang Jiang,Dong Li
出处
期刊:Chemical Engineering Journal [Elsevier]
卷期号:469: 143914-143914 被引量:18
标识
DOI:10.1016/j.cej.2023.143914
摘要

Radiation-induced skin injury (RISI) represents a prevalent issue following radiotherapy. The main factors influencing RISI wound recovery include ROS and NLRP3 inflammasome activation as well as wound infection, amongst others. Herein, a biomaterial for the healing of radio-induced injury was designed using multiple strategies. A gallic acid (GA)-assisted isolation process was first applied to prepare gallic acid-grafted soy protein (SPI-GA) from spherical soy protein. The SPI-GA was then modified with simultaneously-grafted phenol and thiol cohorts (SH) (SPI-GA-SH). Due to the antibacterial properties of graphene oxide (GO),[email protected] biogels was finally self-assembled into an adhesive biogel in a binary solvent system (dopamine-glycerol/water). Characterization for adhesive and paintable SPI-based biogels indicated that the material was successfully synthesized. Cytological studies further highlighted the antibacterial properties of [email protected], its non-toxicity to HaCaT cultures as well as its ability to promote vascularization and cell migrative while inhibiting apoptotic. Genomics assessment also demonstrated that the material could effectively improve the abnormal expression of skin cultures induced by radiation. Finally, a murine model suggested that [email protected] could reduce ROS and NLRP3 expression while promoting wound recovery. This work pioneered SPI-based biogel deployment as material for RISI recovery.
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