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首页> 外文期刊>Biomaterials >Anti-infective photodynamic biomaterials for the prevention of intraocular lens-associated infectious endophthalmitis.
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Anti-infective photodynamic biomaterials for the prevention of intraocular lens-associated infectious endophthalmitis.

机译:抗感染光动力生物材料,用于预防眼内晶状体相关的感染性眼内炎。

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摘要

Bacterial attachment onto intraocular lenses (IOLs) during cataract extraction and IOL implantation is a prominent aetiological factor in the pathogenesis of infectious endophthalmitis. Photodynamic therapy (PDT) and photodynamic antimicrobial chemotherapy (PACT) have shown that photosensitizers are effective treatments for cancer, and in the photoinactivation of bacteria, viruses, fungi and parasites, in the presence of light. To date, no method of localizing the photocytotoxic effect of a photosensitizer at a biomaterial surface has been demonstrated. Here we show a method for concentrating this effect at a material surface to prevent bacterial colonization by attaching a porphyrin photosensitizer at, or near to, that surface, and demonstrate the principle using IOL biomaterials. Anionic hydrogel copolymers were shown to permanently bind a cationic porphyrin through electrostatic interactions as a thin surface layer. The mechanical and thermal properties of the materials showed that the porphyrin acts as a surface cross-linking agent, and renders surfaces more hydrophilic. Importantly, Staphylococcus epidermidis adherence was reduced by up to 99.02+/-0.42% relative to the control in intense light conditions and 91.76+/-5.99% in the dark. The ability to concentrate the photocytotoxic effect at a surface, together with a significant dark effect, provides a platform for a range of light-activated anti-infective biomaterial technologies.
机译:白内障摘除和人工晶状体植入过程中细菌附着在眼内透镜(IOL)上是感染性眼内炎发病机理中的重要病因。光动力疗法(PDT)和光动力抗菌化学疗法(PACT)已显示,光敏剂是有效的癌症治疗方法,并且在有光的情况下可有效灭活细菌,病毒,真菌和寄生虫。迄今为止,尚未证明在生物材料表面定位光敏剂的光细胞毒性作用的方法。在这里,我们展示了一种通过在表面或附近附着卟啉光敏剂来在材料表面集中此效应以防止细菌定植的方法,并展示了使用IOL生物材料的原理。阴离子水凝胶共聚物显示出通过静电相互作用永久结合阳离子卟啉作为薄表面层。材料的机械和热性能表明,卟啉充当表面交联剂,并使表面更具亲水性。重要的是,相对于强光条件下的对照,表皮葡萄球菌的粘附减少了高达99.02 +/- 0.42%,而在黑暗条件下则降低了91.76 +/- 5.99%。将光细胞毒性作用集中在表面的能力以及显着的深色作用,为一系列光激活的抗感染生物材料技术提供了一个平台。

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