Reigada Inés, Guarch-Pérez Clara, Patel Jayendra Z, Riool Martijn, Savijoki Kirsi, Yli-Kauhaluoma Jari, Zaat Sebastian A J, Fallarero Adyary
Drug Research Program, Division of Pharmaceutical Biosciences, Faculty of Pharmacy, University of Helsinki, FI-00014 Helsinki, Finland.
Department of Medical Microbiology and Infection Prevention, Amsterdam institute for Infection and Immunity, Amsterdam UMC, University of Amsterdam, 1105 AZ Amsterdam, The Netherlands.
Microorganisms. 2020 Nov 9;8(11):1757. doi: 10.3390/microorganisms8111757.
Nosocomial diseases represent a huge health and economic burden. A significant portion is associated with the use of medical devices, with 80% of these infections being caused by a bacterial biofilm. The insertion of a foreign material usually elicits inflammation, which can result in hampered antimicrobial capacity of the host immunity due to the effort of immune cells being directed to degrade the material. The ineffective clearance by immune cells is a perfect opportunity for bacteria to attach and form a biofilm. In this study, we analyzed the antibiofilm capacity of three naturally derived biofilm inhibitors when combined with immune cells in order to assess their applicability in implantable titanium devices and low-density polyethylene (LDPE) endotracheal tubes. To this end, we used a system based on the coculture of HL-60 cells differentiated into polymorphonuclear leukocytes (PMNs) and (laboratory and clinical strains) on titanium, as well as LDPE surfaces. Out of the three inhibitors, the one coded showed the highest potential to be incorporated into implantable devices, as it displayed a combined activity with the immune cells, preventing bacterial attachment on the titanium and LDPE. The other two inhibitors seemed to also be good candidates for incorporation into LDPE endotracheal tubes.
医院感染带来了巨大的健康和经济负担。很大一部分与医疗设备的使用有关,其中80%的感染是由细菌生物膜引起的。异物的植入通常会引发炎症,由于免疫细胞致力于降解该材料,这可能导致宿主免疫的抗菌能力受到阻碍。免疫细胞清除无效为细菌附着并形成生物膜提供了绝佳机会。在本研究中,我们分析了三种天然来源的生物膜抑制剂与免疫细胞联合使用时的抗生物膜能力,以评估它们在可植入钛设备和低密度聚乙烯(LDPE)气管插管中的适用性。为此,我们使用了一种基于将分化为多形核白细胞(PMN)的HL-60细胞与(实验室菌株和临床菌株)在钛以及LDPE表面共培养的系统。在这三种抑制剂中,表示为 的那种显示出被纳入可植入设备的最高潜力,因为它与免疫细胞表现出联合活性,可防止细菌附着在钛和LDPE上。另外两种抑制剂似乎也是纳入LDPE气管插管的良好候选者。