Pan Zihong, Liu Zixu, Yang Sijia, Shen Zhanyu, Wu Yuchen, Liu Yanyu, Li Jingfan, Wang Liang
School of Chemistry and Chemical Engineering, Tianjin University of Technology, 391 Binshuixidao, Tianjin 300384, China.
Polymers (Basel). 2024 Dec 25;17(1):17. doi: 10.3390/polym17010017.
Catheter-associated urinary tract infection (CAUTI) induced by rapid bacterial colonization and biofilm formation on urinary catheters is a key issue that urgently needs to be addressed. To prevent CAUTI, many contact-killing, non-leaching coatings have been developed for the surfaces of silicone catheters. However, due to the chemical inertness of the silicone substrate, most current coatings lack adhesion and are unstable under external forces. Thus, the aim of this study was to develop a surface coating that has both good antibacterial ability and a high affinity toward silicone substrates. To achieve high affinity, a pre-coating layer with abundant surface vinyl groups, named SI-vinyl, was prepared on the silicone substrate by moisture curing using a mixture of α,ω-dihydroxy polydimethylsiloxane and vinyltrimethoxysilane as the painting agent. To endow the surface with contact-killing ability, a series of polyurethanes with different contents of quaternary ammonium salt groups in their main chain and two vinyl end groups were synthesized and covalently grafted onto the surface of SI-vinyl, resulting in corresponding bactericidal coatings with different surface contents of quaternary ammonium salt groups (SI-QAS). Of these bactericidal coatings, SI-QAS-2, with a surface QAS content of 2.1 × 10 N cm, was selected as the best coating based on the consideration of stability, compatibility, and antibacterial ability. The SI-QAS-2 coating demonstrated high contact-killing performance, rapidly inactivating 72.8%, 99.9%, and 98.9% of Escherichia coli, Staphylococcus aureus, and Pseudomonas aeruginosa within 30 min. Furthermore, even after being exposed to a high concentration of bacteria (10 CFU/mL) for 4 days, the SI-QAS-2 coating still maintained a high bactericidal ratio of over 80%. In summary, we developed a novel contact-killing coating that reduces the risk of bacterial infections caused by catheter implantation, demonstrating that it has high affinity toward silicone substrates, excellent contact-killing efficiency, a facile preparation method, and potential for further application.
导尿管表面细菌快速定植和生物膜形成引起的导管相关尿路感染(CAUTI)是一个亟待解决的关键问题。为预防CAUTI,人们为硅胶导尿管表面开发了许多具有接触杀灭作用、不浸出的涂层。然而,由于硅胶基材的化学惰性,目前大多数涂层缺乏附着力,在外力作用下不稳定。因此,本研究的目的是开发一种兼具良好抗菌能力和对硅胶基材高亲和力的表面涂层。为实现高亲和力,以α,ω-二羟基聚二甲基硅氧烷和乙烯基三甲氧基硅烷的混合物为涂覆剂,通过湿气固化在硅胶基材上制备了具有丰富表面乙烯基的预涂层,命名为SI-乙烯基。为赋予表面接触杀灭能力,合成了一系列主链含有不同含量季铵盐基团且带有两个乙烯基端基的聚氨酯,并将其共价接枝到SI-乙烯基表面,得到了具有不同季铵盐基团表面含量的相应杀菌涂层(SI-QAS)。在这些杀菌涂层中,基于稳定性、相容性和抗菌能力的考虑,选择表面季铵盐含量为2.1×10 N cm的SI-QAS-2作为最佳涂层。SI-QAS-2涂层表现出高接触杀灭性能,在30分钟内可快速使72.8%、99.9%和98.9%的大肠杆菌、金黄色葡萄球菌和铜绿假单胞菌失活。此外,即使在高浓度细菌(10 CFU/mL)中暴露4天,SI-QAS-2涂层仍保持超过80%的高杀菌率。总之,我们开发了一种新型接触杀灭涂层,降低了导管植入引起细菌感染的风险,表明其对硅胶基材具有高亲和力、优异的接触杀灭效率、简便的制备方法以及进一步应用的潜力。