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通过将负载盐酸左氧氟沙星的介孔二氧化硅微球固定在多孔支架表面制备抗菌骨移植材料

Development of an Antibacterial Bone Graft by Immobilization of Levofloxacin Hydrochloride-Loaded Mesoporous Silica Microspheres on a Porous Scaffold Surface.

作者信息

Wei Jiawei, Wang Yao, Jiang Jiaxing, Yan Yan, Fan Dongmei, Yang Xinguang, Zuo Yi, Li Yubao, Gu Hongchen, Li Jidong

出版信息

J Biomed Nanotechnol. 2019 May 1;15(5):1097-1105. doi: 10.1166/jbn.2019.2743.

DOI:10.1166/jbn.2019.2743
PMID:30890239
Abstract

An effective local drug delivery system remains an urgently needed product for the treatment of chronic osteomyelitis in the clinic. In this study, we developed an antibacterial functionalization bone graft by immobilizing levofloxacin hydrochloride-loaded mesoporous silica microspheres (LFH @ MSNs) on the surface of a nanohydroxyapatite/polyurethane (-HA/PU) bioactive composite scaffold. Through pretreatment of the -HA/PU scaffold by chitosan solution and subsequent crosslinking by vanillin, LFH @ MSNs were uniformly and stably immobilized on the scaffold surface. The results of drug release experiments showed that the release of LFH from LFH @ MSN-modified -HA/PU scaffolds (LFH @ MSN/ HA/PU) lasted up to 42d. The antibacterial assays indicated that LFH @ MSN/-HA/PU offers satisfactory antibacterial activity against both gram-positive (Staphylococcus aureus) and gram-negative (Escherichia coli) bacteria. The biosafety assays demonstrated that the LFH @ MSN/-HA/PU scaffold could satisfy the requirements of the biosafety standards. The constructed LFH @ MSN/-HA/PU porous scaffolds with an antibacterial surface and favorable biosafety are deemed a promising candidate for infectious bone defect repair.

摘要

一种有效的局部给药系统仍然是临床上治疗慢性骨髓炎急需的产品。在本研究中,我们通过将负载盐酸左氧氟沙星的介孔二氧化硅微球(LFH@MSNs)固定在纳米羟基磷灰石/聚氨酯(-HA/PU)生物活性复合支架表面,开发了一种抗菌功能化骨移植材料。通过壳聚糖溶液对-HA/PU支架进行预处理,随后用香草醛交联,LFH@MSNs被均匀且稳定地固定在支架表面。药物释放实验结果表明,LFH从LFH@MSN修饰的-HA/PU支架(LFH@MSN/HA/PU)中的释放持续长达42天。抗菌试验表明,LFH@MSN/-HA/PU对革兰氏阳性菌(金黄色葡萄球菌)和革兰氏阴性菌(大肠杆菌)均具有令人满意的抗菌活性。生物安全性试验表明,LFH@MSN/-HA/PU支架能够满足生物安全标准的要求。构建的具有抗菌表面和良好生物安全性的LFH@MSN/-HA/PU多孔支架被认为是感染性骨缺损修复的有希望的候选材料。

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