State Key Laboratory of Chemical Resource Engineering, State Key Laboratory of Organic-Inorganic Composites, Key Lab of Biomedical Materials of Natural Macromolecules (Beijing University of Chemical Technology), Ministry of Education, Beijing Laboratory of Biomedical Materials, Beijing, 100029, China.
Adv Sci (Weinh). 2023 May;10(14):e2300328. doi: 10.1002/advs.202300328. Epub 2023 Mar 19.
The fact that multidrug resistance (MDR) could induce medical device-related infections, along with the invalidation of traditional antibiotics has become an intractable global medical issue. Therefore, there is a pressing need for innovative strategies of antibacterial functionalization of medical devices. For this purpose, a multimodal antibacterial coating that combines photothermal and photodynamic therapies (PTT/PDT) is developed here based on novel heavy atom-free photosensitizer compound, BDP-6 (a kind of boron-dipyrromethene). The photothermal conversion efficiency of BDP-6 is of 55.9%, which could improve biocompatibility during PTT/PDT process by reducing the exciting light power density. Furthermore, BDP-6, together with oxidized hyaluronic acid, is crosslinked with a natural polymer, gelatin, to fabricate a uniform coating (denoted as polyurethane (PU)-GHB) on the surface of polyurethane. PU-GHB has excellent synergistic in vitro PTT/PDT antibacterial performance against both susceptible bacteria and MDR bacteria. The antibacterial mechanisms are revealed as that hyperthermia could reduce the bacterial activity and enhance the permeability of inner membrane to reactive oxygen species by disturbing cell membrane. Meanwhile, in an infected abdominal wall hernia model, the notable anti-infection performance, good in vivo compatibility, and photoacoustic imaging property of PU-GHB are verified. A promising strategy of developing multifunctional antibacterial coatings on implanted medical devices is provided here.
多药耐药(MDR)可导致与医疗器械相关的感染,而传统抗生素的失效已成为全球性的医学难题。因此,迫切需要创新的医疗器械抗菌功能化策略。为此,基于新型无重原子光敏剂化合物 BDP-6(一种硼二吡咯甲烷),开发了一种结合光热和光动力疗法(PTT/PDT)的多模式抗菌涂层。BDP-6 的光热转换效率为 55.9%,通过降低激发光功率密度,可以在 PTT/PDT 过程中提高生物相容性。此外,BDP-6 与氧化透明质酸一起与天然聚合物明胶交联,在聚氨酯表面形成均匀的涂层(表示为聚氨酯(PU)-GHB)。PU-GHB 具有优异的协同体外 PTT/PDT 抗菌性能,对敏感菌和 MDR 菌均有作用。抗菌机制表明,热疗通过干扰细胞膜可以降低细菌活性并增强内膜对活性氧的通透性。同时,在感染性腹壁疝模型中,验证了 PU-GHB 的显著抗感染性能、良好的体内相容性和光声成像特性。为开发植入式医疗器械的多功能抗菌涂层提供了一种有前途的策略。