Oosterhof Janine J H, Buijssen Kevin J D A, Busscher Henk J, van der Laan Bernard F A M, van der Mei Henny C
Department of Biomedical Engineering, University Medical Center Groningen and University of Groningen, Antonius Deusinglaan 1, 9713 AV Groningen, The Netherlands.
Appl Environ Microbiol. 2006 May;72(5):3673-7. doi: 10.1128/AEM.72.5.3673-3677.2006.
Two quaternary ammonium silanes (QAS) were used to coat silicone rubber tracheoesophageal shunt prostheses, yielding a positively charged surface. One QAS coating [(trimethoxysilyl)-propyldimethyloctadecylammonium chloride] was applied through chemical bonding, while the other coating, Biocidal ZF, was sprayed onto the silicone rubber surface. The sprayed coating lost its stability within an hour, while the chemically bonded coating appeared stable. Upon incubation in an artificial throat model, allowing simultaneous adhesion and growth of yeast and bacteria, all coated prostheses showed significant reductions in the numbers of viable yeast (to 12% to 16%) and bacteria (to 27% to 36%) compared with those for silicone rubber controls, as confirmed using confocal laser scanning microscopy after live/dead staining of the biofilms. In situ hybridization with fluorescently labeled oligonucleotide probes showed that yeasts expressed hyphae on the untreated and Biocidal ZF-coated prostheses but not on the QAS-coated prostheses. Whether this is a result of the positive QAS coating or is due to the reduced number of bacteria is currently unknown. In summary, this is the first report on the inhibitory effects of positively charged coatings on the viability of yeasts and bacteria in mixed biofilms. Although the study initially aimed at reducing voice prosthetic biofilms, its relevance extends to all biomedical and environmental surfaces where mixed biofilms develop and present a problem.
使用两种季铵硅烷(QAS)对硅橡胶气管食管分流假体进行涂层处理,使其表面带正电荷。一种QAS涂层[(三甲氧基甲硅烷基)-丙基二甲基十八烷基氯化铵]通过化学键合方式施加,而另一种涂层Biocidal ZF则喷涂在硅橡胶表面。喷涂涂层在一小时内失去稳定性,而化学键合涂层则表现出稳定性。在人工喉模型中进行培养,使酵母和细菌同时黏附并生长,与硅橡胶对照相比,所有涂层假体上活酵母数量(降至12%至16%)和细菌数量(降至27%至36%)均显著减少,这在对生物膜进行活/死染色后通过共聚焦激光扫描显微镜得到证实。用荧光标记的寡核苷酸探针进行原位杂交显示,酵母在未处理的和Biocidal ZF涂层的假体上形成菌丝,但在QAS涂层的假体上不形成。这是由于带正电荷的QAS涂层还是由于细菌数量减少所致,目前尚不清楚。总之,这是关于带正电荷涂层对混合生物膜中酵母和细菌活力抑制作用的首次报道。尽管该研究最初旨在减少语音假体生物膜,但其相关性扩展到所有形成混合生物膜并带来问题的生物医学和环境表面。