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用金属纳米粒子稳定的聚合物包覆导尿管以延缓细菌生物膜形成

Retardation of Bacterial Biofilm Formation by Coating Urinary Catheters with Metal Nanoparticle-Stabilized Polymers.

作者信息

Rugaie Osamah Al, Abdellatif Ahmed A H, El-Mokhtar Mohamed A, Sabet Marwa A, Abdelfattah Ahmed, Alsharidah Mansour, Aldubaib Musaed, Barakat Hassan, Abudoleh Suha Mujahed, Al-Regaiey Khalid A, Tawfeek Hesham M

机构信息

Department of Basic Medical Sciences, College of Medicine and Medical Sciences, Qassim University, P.O. Box 991, Unaizah 51911, Saudi Arabia.

Department of Pharmaceutics, College of Pharmacy, Qassim University, Buraydah 51452, Saudi Arabia.

出版信息

Microorganisms. 2022 Jun 27;10(7):1297. doi: 10.3390/microorganisms10071297.

Abstract

Urinary catheter infections remain an issue for many patients and can complicate their health status, especially for individuals who require long-term catheterization. Catheters can be colonized by biofilm-forming bacteria resistant to the administered antibiotics. Therefore, this study aimed to investigate the efficacy of silver nanoparticles (AgNPs) stabilized with different polymeric materials generated via a one-step simple coating technique for their ability to inhibit biofilm formation on urinary catheters. AgNPs were prepared and characterized to confirm their formation and determine their size, charge, morphology, and physical stability. Screening of the antimicrobial activity of nanoparticle formulations and determining minimal inhibitory concentration (MIC) and their cytotoxicity against PC3 cells were performed. Moreover, the antibiofilm activity and efficacy of the AgNPs coated on the urinary catheters under static and flowing conditions were examined against a clinical isolate of Escherichia coli. The results showed that the investigated polymers could form physically stable AgNPs, especially those prepared using polyvinyl pyrrolidone (PVP) and ethyl cellulose (EC). Preliminary screening and MIC determinations suggested that the AgNPs-EC and AgNPs-PVP had superior antibacterial effects against E. coli. AgNPs-EC and AgNPs-PVP inhibited biofilm formation to 58.2% and 50.8% compared with AgNPs-PEG, silver nitrate solution and control samples. In addition, coating urinary catheters with AgNPs-EC and AgNPs-PVP at concentrations lower than the determined IC50 values significantly (p < 0.05; t-test) inhibited bacterial biofilm formation compared with noncoated catheters under both static and static and flowing conditions using two different types of commercial Foley urinary catheters. The data obtained in this study provide evidence that AgNP-coated EC and PVP could be useful as potential antibacterial and antibiofilm catheter coating agents to prevent the development of urinary tract infections caused by E. coli.

摘要

导尿管感染对许多患者来说仍是一个问题,并且会使他们的健康状况复杂化,对于那些需要长期导尿的患者尤其如此。导尿管可能会被对所用抗生素具有抗性的形成生物膜的细菌定植。因此,本研究旨在调查通过一步简单涂层技术用不同聚合物材料稳定化的银纳米颗粒(AgNP)抑制导尿管上生物膜形成的能力。制备并表征了AgNP,以确认其形成并确定其尺寸、电荷、形态和物理稳定性。对纳米颗粒制剂的抗菌活性进行了筛选,并确定了最低抑菌浓度(MIC)及其对PC3细胞的细胞毒性。此外,还研究了在静态和流动条件下涂覆在导尿管上的AgNP对临床分离的大肠杆菌的抗生物膜活性和效果。结果表明,所研究的聚合物可以形成物理稳定的AgNP,特别是那些用聚乙烯吡咯烷酮(PVP)和乙基纤维素(EC)制备的。初步筛选和MIC测定表明,AgNP-EC和AgNP-PVP对大肠杆菌具有优异的抗菌效果。与AgNP-PEG、硝酸银溶液和对照样品相比,AgNP-EC和AgNP-PVP将生物膜形成抑制到58.2%和50.8%。此外,在低于确定的IC50值的浓度下,用AgNP-EC和AgNP-PVP涂覆导尿管,与未涂覆的导尿管相比,在静态和流动条件下使用两种不同类型的商用Foley导尿管时,均能显著(p < 0.05;t检验)抑制细菌生物膜形成。本研究获得的数据提供了证据,表明涂覆有AgNP的EC和PVP可作为潜在的抗菌和抗生物膜导管涂层剂,以预防由大肠杆菌引起的尿路感染的发生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b1a/9319761/7b5e22012d68/microorganisms-10-01297-g001.jpg

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