Covalently construction of poly(hexamethylene biguanide) as high-efficiency antibacterial coating for silicone rubber

التفاصيل البيبلوغرافية
العنوان: Covalently construction of poly(hexamethylene biguanide) as high-efficiency antibacterial coating for silicone rubber
المؤلفون: Peiming Liu, Hua Yin, Xiaohan Dong, Xiao Zhang, Wan Peng, Jiangmei Peng, Jin Sun, Yahui Gu, Pingsheng Liu, Zhuangzhuang Ma, Jian Shen
المصدر: Chemical Engineering Journal. 412:128707
بيانات النشر: Elsevier BV, 2021.
سنة النشر: 2021
مصطلحات موضوعية: Chemistry, Biguanide, medicine.drug_class, General Chemical Engineering, Biofilm, 02 engineering and technology, General Chemistry, engineering.material, 010402 general chemistry, 021001 nanoscience & nanotechnology, Silicone rubber, 01 natural sciences, Industrial and Manufacturing Engineering, 0104 chemical sciences, Contact angle, chemistry.chemical_compound, Coating, Covalent bond, engineering, medicine, Environmental Chemistry, Surface modification, 0210 nano-technology, Layer (electronics), Nuclear chemistry
الوصف: Biofilm formation on biomedical devices & implants and the resulting bacterial induced infections are remaining severe clinic issues. Here, a facile layer-by-layer strategy to covalently construct poly(hexamethylene biguanide) (PHMB) as the high-efficiency bactericidal coating on silicone rubber (SR) has been developed. Based on the NHS/NH2 chemistry (the reaction between active ester groups and amino groups), an active ester homo-polymers (pNHSMA) as the precursor layer was created on activated SR surface (SR-NH2), which followed by the immobilization of dense PHMB coating. XPS and water contact angle tests verified the successful construction of PHMB coating on the surface. Robust relationships between the contact time/initial seeding density of bacteria and the bactericidal capacity of the coating have been established based on systematical qualitative and quantitative antibacterial evaluations. Results showed that the PHMB coating is able to kill 100% of the attached S. aureus cells within 1 h with initial density below 1.18 × 105 CFU/cm2 without compromising of the cytocompatibility of the substrates. Interestingly, the coating significantly increased the mechanical property of the SR substrates due to the additional crosslinking introduced by the coating. Furthermore, the high-efficiency antibacterial property of PHMB coating (bactericidal ratio of 96.83%) and the significant suppressed implant-induced infection have been verified via the in vivo simulated infection model on rats. In the meantime, this surface modification strategy can be easily applied to SR based catheters, which is able to completely kill the surface attached bacteria when immersed in a bacterial suspension with a density of 3 × 106 CFU/mL for 30 min. These findings provide a new approach to combat the biofilm formation and devices-associated infections for general SR based biomedical devices/implants.
تدمد: 1385-8947
URL الوصول: https://explore.openaire.eu/search/publication?articleId=doi_________::1bbe132f0620acf01bd2ab9c47a6eead
https://doi.org/10.1016/j.cej.2021.128707
حقوق: CLOSED
رقم الأكسشن: edsair.doi...........1bbe132f0620acf01bd2ab9c47a6eead
قاعدة البيانات: OpenAIRE