静电纺丝
羧甲基纤维素
环氧乙烷
材料科学
化学工程
药物输送
层状双氢氧化物
核化学
傅里叶变换红外光谱
生物相容性
乙二醇
聚乳酸
化学
聚合物
复合材料
吸附
纳米技术
有机化学
钠
冶金
工程类
共聚物
作者
Sepideh Yoosefi,Amir Rakhshani,Vahideh Montazeri,Mohamadreza Tavakoli,Amin Aliabadi,Yousef Fatahi,Helia Behrouzfar,Shadi Keihankhadiv,Behzad Darbasizadeh,Hamidreza Motasadizadeh,Hassan Farhadnejad
标识
DOI:10.1016/j.ijbiomac.2022.10.087
摘要
The main goal of the present project was to design and develop ibuprofen (IBU) and layered double hydroxides-vancomycin (LDH-VAN) nanohybrid loaded bionanocomposite fibrous mats to increase the wound healing rate. Thus, first, LDH-VAN nanohybrid particles was synthesized by in-situ incorporation of VAN into the Mg-Al-LDH interlayers during the co-precipitation of hydroxides. Then, LDH-VAN/IBU/CMC-PEO bionanocomposite fibrous mats were fabricated by electrospinning technique. Test samples were examined XRD, SEM, TEM, TGA, and FTIR. In vitro drug release test was performed in the phosphate buffer solution (pH = 7.4) to prove the efficiency of the fabricated bionanocomposite fibrous mats as a sustained-release carrier for both VAN and IBU. All the fabricated bionanocomposite fibrous mats did not displayed any significant cytotoxicity on NIH/3 T3 fibroblast cells. The wound area in the rats treated with LDH-VAN/IBU/CMC-PEO bionanocomposite fibrous mats was less than other treatment groups. Based on histological analysis, the LDH-VAN/IBU/CMC-PEO bionanocomposite fibrous mats possess a faster wound healing than other nanofibrous mats. Data obtained from the present project indicated that LDH-VAN/IBU/CMC-PEO bionanocomposite fibrous mats could accelerate the wound healing process.
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