Szunerits Sabine, Barras Alexandre, Boukherroub Rabah
Institute of Electronics, Microelectronics and Nanotechnology (IEMN), UMR-CNRS 8520, University Lille 1, Avenue Poincaré-BP 60069, 59652 Villeneuve d'Ascq Cedex, France.
Int J Environ Res Public Health. 2016 Apr 12;13(4):413. doi: 10.3390/ijerph13040413.
Bacterial infectious diseases, sharing clinical characteristics such as chronic inflammation and tissue damage, pose a major threat to human health. The steady increase of multidrug-resistant bacteria infections adds up to the current problems modern healthcare is facing. The treatment of bacterial infections with multi-resistant germs is very difficult, as the development of new antimicrobial drugs is hardly catching up with the development of antibiotic resistant pathogens. These and other considerations have generated an increased interest in the development of viable alternatives to antibiotics. A promising strategy is the use of nanomaterials with antibacterial character and of nanostructures displaying anti-adhesive activity against biofilms. Glycan-modified nanodiamonds (NDs) revealed themselves to be of great promise as useful nanostructures for combating microbial infections. This review summarizes the current efforts in the synthesis of glycan-modified ND particles and evaluation of their antibacterial and anti-biofilm activities.
细菌性传染病具有慢性炎症和组织损伤等临床特征,对人类健康构成重大威胁。多重耐药菌感染的不断增加加剧了现代医疗保健目前面临的问题。治疗多重耐药菌引起的细菌感染非常困难,因为新型抗菌药物的研发几乎跟不上抗生素耐药病原体的发展。出于这些以及其他考虑,人们对开发抗生素的可行替代品越来越感兴趣。一种有前景的策略是使用具有抗菌特性的纳米材料以及对生物膜具有抗粘附活性的纳米结构。聚糖修饰的纳米金刚石(NDs)已显示出作为对抗微生物感染的有用纳米结构具有巨大潜力。本综述总结了目前在合成聚糖修饰的ND颗粒及其抗菌和抗生物膜活性评估方面所做的努力。