具有精确 pH 值响应抗菌功能的智能型齐聚物涂层,可用于骨植入物以对抗细菌感染。

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Qinsheng Hu, Yangrui Du, Yangjing Bai, Dandan Xing, Chengcheng Wu, Kaijun Li, Shiying Lang, Xiaoyan Liu and Gongyan Liu
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引用次数: 0

摘要

基于齐聚物聚合物的亲水防污涂层已被广泛应用于骨植入物的表面修饰,以防止生物膜的形成,降低植入物相关感染的可能性。然而,由于缺乏有效而精确的抗菌活性,它们的长期有效性受到了很大限制。在此,我们设计了一种 pH 响应型智能齐聚物抗菌涂层(PSB/GS 涂层),并采用简单的两步法将其牢固地制作在钛基骨植入物上。首先,多巴胺(DA)和聚(甲基丙烯酸磺基甜菜碱-多巴胺-甲基丙烯酰胺)共聚物(PSBDA)通过贻贝启发的表面化学沉积在植入物上,形成具有丰富儿茶酚残基的亲水性基底涂层。接着,通过在 GS 的胺基与齐聚物聚合物和 DA 成分中的儿茶酚残基之间形成酸敏席夫碱键,将富含氨基的抗生素硫酸庆大霉素(GS)共价连接到涂层上。在植入初期,亲水型齐聚物聚合物表现出了理想的防污性能,可有效减少 90% 以上的蛋白质和细菌附着。随着时间的推移,细菌增殖导致微环境 pH 值下降,导致对酸敏感的席夫碱键水解,从而按需释放出 GS,有效增强了涂层的抗生物膜特性。得益于这种协同防污和智能抗菌活性,PSB/GS 涂层在体内术前和术后感染大鼠模型中都发挥了出色的抗感染活性。这种简便而有效的涂层策略有望为抗击骨植入相关感染提供一种前景广阔的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Smart zwitterionic coatings with precise pH-responsive antibacterial functions for bone implants to combat bacterial infections†

Smart zwitterionic coatings with precise pH-responsive antibacterial functions for bone implants to combat bacterial infections†

Smart zwitterionic coatings with precise pH-responsive antibacterial functions for bone implants to combat bacterial infections†

Hydrophilic antifouling coatings based on zwitterionic polymers have been widely applied for the surface modification of bone implants to combat biofilm formation and reduce the likelihood of implant-related infections. However, their long-term effectiveness is significantly limited by the lack of effective and precise antibacterial activity. Here, a pH-responsive smart zwitterionic antibacterial coating (PSB/GS coating) was designed and robustly fabricated onto titanium-base bone implants by using a facile two-step method. First, dopamine (DA) and a poly(sulfobetaine methacrylate-co-dopamine methacrylamide) (PSBDA) copolymer were deposited on implants via mussel-inspired surface chemistry, resulting in a hydrophilic base coating with abundant catechol residues. Next, an amino-rich antibiotic, gentamicin sulfate (GS), was covalently linked to the coating through the formation of acid-sensitive Schiff base bonds between the amine groups of GS and the catechol residues present in both the zwitterionic polymer and the DA component. During the initial implantation period, the hydrophilic zwitterionic polymers demonstrated the desired anti-fouling properties that could effectively reduce protein and bacterial adhesion by over 90%. With time, the bacterial proliferation led to a decrease in the microenvironment pH value, resulting in the hydrolysis of the acid-sensitive Schiff base bonds, thereby releasing GS on demand and effectively enhancing the anti-biofilm properties of coatings. Benefiting from this synergistic antifouling and smart antibacterial activities, the PSB/GS coating exerted an excellent anti-infective activity in both in vivo preoperative and postoperative infection rat models. This proposed facile yet effective coating strategy is expected to provide a promising solution to combat bone implant-related infections.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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