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首页> 外文期刊>ACS applied materials & interfaces >Programmed Multidrug Delivery Based on Bio-Inspired Capsule-Integrated Nanocoatings for Infected Bone Defect Treatment
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Programmed Multidrug Delivery Based on Bio-Inspired Capsule-Integrated Nanocoatings for Infected Bone Defect Treatment

机译:基于生物启发胶囊综合纳米型纳米型进行编程的多药递送,用于感染骨缺损治疗

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摘要

Infection and delayed wound healing are two major serious complications related to traumatic injuries and cause a significant burden to patients and society. Most currently available drug delivery materials typically carry a single drug, lack protection from drug loading, and face challenges in on-demand and precisely controlled drug release. Here, we report a flower (Cirsium arvense )-inspired capsule-integrated multilayer nanofilm (FICIF), synthesized using a layer-by-layer self-assembly, for programmed multiple drug co-delivery for trauma (open fracture as an example) treatments. Our approach allows polypeptide multilayer nanofilms and innovative impregnated capsules to assemble hierarchical reservoirs with specific drug binding sites, shielding protection capability, and ordered packing structures. The resultant FICIF nanocarriers enable sustained and on-demand co-delivery of a unique immune-tuning cytokine (interleukin 12p70) and a growth factor (bone morphogenetic protein 2) in clinical use, resulting in extraordinary anti-infection (3 orders of magnitude improved bacterial killing) and bone regeneration (5 times enhanced bone healing) in treating infected rat femur fractures. The successful synthesis of these biomimetic high-performance delivery nanocoatings is expected to serve as a source of inspiration for the development of biomaterials for various clinical applications.
机译:感染和伤口愈合延迟是与创伤相关的两大严重并发症,给患者和社会造成巨大负担。目前大多数可用的药物递送材料通常携带单一药物,缺乏药物装载保护,并且在按需和精确控制药物释放方面面临挑战。在这里,我们报告了一种以花朵(大蓟)为灵感的胶囊集成多层纳米薄膜(FICIF),该薄膜是使用逐层自组装合成的,用于创伤(开放性骨折为例)治疗的程序化多药物联合递送。我们的方法允许多肽多层纳米薄膜和创新的浸渍胶囊组装具有特定药物结合位点、屏蔽保护能力和有序包装结构的层次化储层。由此产生的FICIF纳米载体能够在临床使用中持续和按需共同输送独特的免疫调节细胞因子(白细胞介素12p70)和生长因子(骨形态发生蛋白2),从而在治疗感染大鼠股骨骨折时产生非凡的抗感染(提高细菌杀灭力3个数量级)和骨再生(促进骨愈合5倍)。这些仿生高性能纳米涂层的成功合成有望成为开发各种临床应用生物材料的灵感来源。

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