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通过释放多效一氧化氮和醋酸洗必泰的医用级硅酮生物界面来预防医疗器械感染。

Prevention of medical device infections via multi-action nitric oxide and chlorhexidine diacetate releasing medical grade silicone biointerfaces.

机构信息

School of Chemical, Materials and Biomedical Engineering, University of Georgia, Athens, Georgia, USA.

出版信息

J Biomed Mater Res A. 2022 Jun;110(6):1263-1277. doi: 10.1002/jbm.a.37372. Epub 2022 Feb 15.

Abstract

The presence of bacteria and biofilm on medical device surfaces has been linked to serious infections, increased health care costs, and failure of medical devices. Therefore, antimicrobial biointerfaces and medical devices that can thwart microbial attachment and biofilm formation are urgently needed. Both nitric oxide (NO) and chlorhexidine diacetate (CHXD) possess broad-spectrum antibacterial properties. In the past, individual polymer release systems of CHXD and NO donor S-nitroso-N-acetylpenicillamine (SNAP) incorporated polymer platforms have attracted considerable attention for biomedical/therapeutic applications. However, the combination of the two surfaces has not yet been explored. Herein, the synergy of NO and CHXD was evaluated to create an antimicrobial medical-grade silicone rubber. The 10 wt% SNAP films were fabricated using solvent casting with a topcoat of CHXD (1, 3, and 5 wt%) to generate a dual-active antibacterial interface. Chemiluminescence studies confirmed the NO release from SNAP-CHXD films at physiologically relevant levels (0.5-4 × 10  mol min  cm ) for at least 3 weeks and CHXD release for at least 7 days. Further characterization of the films via SEM-EDS confirmed uniform distribution of SNAP and presence of CHXD within the polymer films without substantial morphological changes, as confirmed by contact angle hysteresis. Moreover, the dual-active SNAP-CHXD films were able to significantly reduce Escherichia coli and Staphylococcus aureus bacteria (>3-log reduction) compared to controls with no explicit toxicity towards mouse fibroblast cells. The synergy between the two potent antimicrobial agents will help combat bacterial contamination on biointerfaces and enhance the longevity of medical devices.

摘要

医疗器械表面细菌和生物膜的存在与严重感染、增加医疗保健成本和医疗器械失效有关。因此,迫切需要具有抗微生物功能的生物界面和能够阻止微生物附着和生物膜形成的医疗器械。一氧化氮(NO)和醋酸氯己定(CHXD)都具有广谱抗菌特性。过去,CHXD 和 NO 供体 S-亚硝基-N-乙酰青霉胺(SNAP)的单独聚合物释放系统已被纳入聚合物平台,引起了人们对生物医学/治疗应用的极大关注。然而,这两种表面的结合尚未得到探索。本文评估了 NO 和 CHXD 的协同作用,以创建一种具有抗菌功能的医用级硅橡胶。通过溶剂浇铸制备了 10wt% SNAP 薄膜,并在薄膜表面涂覆了 CHXD(1、3 和 5wt%),以生成具有双重抗菌活性的界面。化学发光研究证实,SNAP-CHXD 薄膜在生理相关水平(0.5-4×10 mol·min·cm )下释放 NO,至少持续 3 周,且 CHXD 释放至少持续 7 天。通过 SEM-EDS 对薄膜进行进一步表征,确认 SNAP 分布均匀,CHXD 存在于聚合物薄膜内,没有明显的形态变化,接触角滞后也证实了这一点。此外,与无明显毒性的对照相比,双重活性的 SNAP-CHXD 薄膜能够显著减少大肠杆菌和金黄色葡萄球菌(>3 对数减少)。两种强力抗菌剂之间的协同作用将有助于对抗生物界面上的细菌污染,并延长医疗器械的使用寿命。

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