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In situ synthesis of size-controlled, stable silver nanoparticles within ultrashort peptide hydrogels and their anti-bacterial properties

机译:超短肽水凝胶中尺寸可控制的稳定银纳米颗粒的原位合成及其抗菌性能

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摘要

We have developed a silver-releasing biomaterial with promising potential for wound healing applications. The material is made of ultrashort peptides which can self-assemble in water to form hydrogels. Silver nanoparticles (Ag NPs) were synthesized in situ within the biomaterial, using only UV irradiation and no additional chemical reducing agents. The synthetic strategy allows precise control of the nanoparticle size, with the network of peptide fibers preventing aggregation of Ag NPs. The biomaterial shows increased mechanical strength compared to the hydrogel control. We observed a sustained release of Ag NPs over a period of 14 days. This is a crucial prerequisite for effective anti-bacterial therapy. The ability to inhibit bacterial growth was tested using different bacterial strains, namely gram-negative Escherichiacoli and Pseudomonas aeruginosa and gram-positive Staphylococcus aureus. Inhibition of bacterial growth was observed for all strains. The best results were obtained for Pseudomonasaeruginosa which is known for exhibiting multidrug resistance. Biocompatibility studies on HDFa cells, using Ag NP-containing hydrogels, did not show any significant influence on cell viability. We propose this silver-releasing hydrogel as an excellent biomaterial with great potential for applications in wound healing due to its low silver content, sustained silver nanoparticle release and biocompatibility.
机译:我们已经开发了一种具有释放潜力的银释放生物材料,可用于伤口愈合。该材料由超短肽制成,可在水中自组装形成水凝胶。仅使用紫外线辐射,不使用其他化学还原剂,就可以在生物材料中原位合成银纳米颗粒(Ag NPs)。合成策略允许精确控制纳米颗粒大小,而肽纤维网络可防止Ag NP聚集。与水凝胶对照相比,生物材料显示出更高的机械强度。我们观察到在14天内Ag NP的持续释放。这是有效抗菌治疗的关键先决条件。使用不同的细菌菌株(即革兰氏阴性大肠杆菌和铜绿假单胞菌以及革兰氏阳性金黄色葡萄球菌)测试了抑制细菌生长的能力。在所有菌株中均观察到细菌生长的抑制。假单胞假单胞菌(Pseudomonasaeruginosa)获得最佳结果,该假单胞菌表现出多药耐药性。使用含Ag NP的水凝胶对HDFa细胞进行的生物相容性研究未显示对细胞活力有任何重大影响。我们提出这种释放银的水凝胶是一种出色的生物材料,由于其低银含量,持续的银纳米颗粒释放和生物相容性,在伤口愈合中具有巨大的应用潜力。

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