弹性蛋白样多肽和三氯生修饰的PCL膜在组织再生中提供无菌保护

IF 8.7 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Xueliang Peng , Yijie Wang , Shuyun Liu, Jiake Zhang, Ling Liu, Qian Liu, Xuanyi Li, Fulin Chen, Zhuoyue Chen
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引用次数: 0

摘要

组织再生是一个时空有序的多维过程,涉及层次结构、血管形成和代谢免疫特性,而损伤通常会引发结构紊乱、炎症、代谢功能障碍和机械损伤。基于这些发现,我们设计了一种功能化聚己内酯(PCL)多孔支架,负载生物相容性弹性蛋白和抗菌药物三氯生,特异性抑制耐甲氧西林金黄色葡萄球菌(MRSA)的生长。采用仿生贻贝黏附的方法,在静电纺PCL膜表面形成聚多巴胺涂层,为弹性蛋白样多肽(ELP)提供接枝位点,将弹性蛋白肽和三氯生附着在PCL表面。该方法不仅为二次反应提供了场所,而且提高了PCL的亲水性。与普通PCL相比,改性后的PCL支架对MRSA的抗菌活性增强,并促进血管化和神经化。这是首次将抗菌药物与ELP联合使用,实现对细菌耐药性的靶向抑制。3d打印PCL的多孔结构提供了良好的力学性能,而ELP优异的生物相容性促进了细胞的增殖和迁移,维持了良好的再生微环境,减轻了抗菌药物的短期细胞毒性。为了评估功能化PCL并扩大其应用范围,我们在低氧皮下和富氧肌肉环境下进行了体内实验,结果表明PCL具有良好的抗菌性能,并具有血管和神经再生的趋势。该研究为伤口软组织愈合和骨损伤再生提供了坚实的理论基础和巨大的应用潜力,特别是在需要抗菌药物耐药性管理的情况下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Elastin-like polypeptide and triclosan-modified PCL membrane provides aseptic protection in tissue regeneration
Tissue regeneration is a spatiotemporally ordered multidimensional process involving hierarchical structures, vascularization, and metabolic-immune properties, while injury often triggers structural disorganization, inflammation, metabolic dysfunction, and mechanical impairment. Based on these findings, we designed a functionalized polycaprolactone (PCL) porous scaffold loaded with biocompatible elastin and the antibacterial drug triclosan, which specifically inhibits the growth of methicillin-resistant Staphylococcus aureus (MRSA). Using a bio-mimetic mussel adhesion approach, a polydopamine coating was formed on the surface of electrospun PCL membranes to provide grafting sites for elastin-like polypeptides (ELP), attaching elastin peptides and triclosan to the PCL surface. This method not only provided sites for secondary reactions but also enhanced the hydrophilicity of PCL. Compared with ordinary PCL, the modified PCL scaffold exhibited enhanced antibacterial activity against MRSA and promoted vascularization and neuralization. This is the first time that an antibacterial drug and ELP have been combined to achieve targeted suppression of bacterial resistance. The porous structure of 3D-printed PCL provides good mechanical properties, while the excellent biocompatibility of ELP promotes cell proliferation and migration, maintains a favorable regenerative microenvironment, and mitigates the short-term cytotoxicity of the antibacterial drug. To evaluate the functionalized PCL and expand its applications, in vivo experiments were conducted in both hypoxic subcutaneous and oxygen-rich muscle environments, demonstrating good antibacterial performance and tendencies towards vascular and neural regeneration. This study provides a solid theoretical basis and great potential for applications in wound soft tissue healing and bone injury regeneration, particularly in scenarios requiring antimicrobial resistance management.
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来源期刊
CiteScore
8.30
自引率
4.90%
发文量
303
审稿时长
30 days
期刊介绍: Materials Today Bio is a multidisciplinary journal that specializes in the intersection between biology and materials science, chemistry, physics, engineering, and medicine. It covers various aspects such as the design and assembly of new structures, their interaction with biological systems, functionalization, bioimaging, therapies, and diagnostics in healthcare. The journal aims to showcase the most significant advancements and discoveries in this field. As part of the Materials Today family, Materials Today Bio provides rigorous peer review, quick decision-making, and high visibility for authors. It is indexed in Scopus, PubMed Central, Emerging Sources, Citation Index (ESCI), and Directory of Open Access Journals (DOAJ).
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