Sustained Release of Antimicrobial Peptide from Self-Assembling Hydrogel Enhanced Osteogenesis

自组装肽 骨髓炎 抗菌肽 生物材料 间充质干细胞 抗菌剂 体外 化学 纳米纤维 体内 自愈水凝胶 细胞生物学 材料科学 微生物学 生物医学工程 炎症 生物物理学 成骨细胞 骨组织 骨愈合 干细胞 阳离子聚合 免疫学 骨感染
作者
Guoli Yang,Tingben Huang,Ying Wang,Huiming Wang,Yongzheng Li,Yu Ke,Lingling Dong
出处
期刊:Journal of Biomaterials Science-polymer Edition [Taylor & Francis]
卷期号:29 (15): 1812-1824 被引量:57
标识
DOI:10.1080/09205063.2018.1504191
摘要

Biomaterials have been widely used in bone infection and osteomyelitis resulting from their versatile functionalities. As far as we know, the appearance of osteomyelitis was mainly caused by bacteria. Therefore, a biomaterial that can cure bone infection and promote osteogenesis may become an ideal candidate for the treatment of osteomyelitis. Cationic antimicrobial peptides (AMPs) have been proved to have an excellent ability to kill bacteria, fungi, viruses, and parasites. However, the application of AMPs in bone infection and osteomyelitis is quite limited. Here, we designed a new hydrogel that has an inhibitory effect on the proliferation of S. aureus and enhances osteogenesis. RADA16 self-assembling peptide has been applied for AMPs delivery. In this study, we demonstrated that RADA16 could form a stable structure and afford the sustained release of AMPs. The interwoven nanofiber morphology was detected by field emission scanning electron microscopy. The sustained release study revealed that the release of AMPs could be obtained until 28 days. In vitro research showed this new self-assembling hydrogel could promote the proliferation of bone mesenchymal stem cells (BMSCs) and inhibited the growth of S. aureus. More importantly, the results in vivo also proved that RADA16-AMP self-assembling peptide had an excellent effect on bone formation. Our findings implied that we successfully combined RADA16 and AMPs together and laid the foundation for the application of this new hydrogel and open new avenues for biomaterials.
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