AbouAitah Khaled, Bil Monika, Pietrzykowska Elzbieta, Szałaj Urszula, Fudala Damian, Woźniak Bartosz, Nasiłowska Justyna, Swiderska-Sroda Anna, Lojkowski Maciej, Sokołowska Barbara, Swieszkowski Wojciech, Lojkowski Witold
Laboratory of Nanostructures and Nanomedicine, Institute of High Pressure Physics, Polish Academy of Sciences, 29/37 Sokolowska Street, 01142 Warsaw, Poland.
Medicinal and Aromatic Plants Research Department, Pharmaceutical and Drug Industries Research Division, National Research Centre (NRC), Dokki, Giza 12622, Egypt.
Nanomaterials (Basel). 2021 Jun 28;11(7):1690. doi: 10.3390/nano11071690.
Medical implant use is associated with a risk of infection caused by bacteria on their surface. Implants with a surface that has both bone growth-promoting properties and antibacterial properties are of interest in orthopedics. In the current study, we fabricated a bioactive coating of hydroxyapatite nanoparticles on polyether ether ketone (PEEK) using the sonocoating method. The sonocoating method creates a layer by immersing the object in a suspension of nanoparticles in water and applying a high-power ultrasound. We show that the simple layer fabrication method results in a well-adhering layer with a thickness of 219 nm to 764 nm. Dropping cefuroxime sodium salt (Cef) antibiotic on the coated substrate creates a layer with a drug release effect and antibacterial activity against . We achieved a concentration of up to 1 mg of drug per cm of the coated substrate. In drug release tests, an initial burst was observed within 24 h, accompanied by a linear stable release effect. The drug-loaded implants exhibited sufficient activity against S. for 24 and 168 h. Thus, the simple method we present here produces a biocompatible coating that can be soaked with antibiotics for antibacterial properties and can be used for a range of medical implants.
医用植入物的使用与由其表面细菌引起的感染风险相关。具有促进骨生长特性和抗菌特性的表面的植入物在骨科领域备受关注。在当前研究中,我们使用超声涂层法在聚醚醚酮(PEEK)上制备了羟基磷灰石纳米颗粒的生物活性涂层。超声涂层法是通过将物体浸入纳米颗粒在水中的悬浮液并施加高功率超声来形成一层。我们表明,这种简单的层制造方法可形成厚度为219纳米至764纳米且附着力良好的层。在涂覆的基材上滴加头孢呋辛钠盐(Cef)抗生素可形成具有药物释放效果且对……具有抗菌活性的层。我们在每厘米涂覆基材上实现了高达1毫克药物的浓度。在药物释放测试中,在24小时内观察到初始突释,同时伴有线性稳定释放效果。载药植入物在24小时和168小时内对……表现出足够的活性。因此,我们在此提出的简单方法可产生一种生物相容性涂层,该涂层可浸泡抗生素以获得抗菌特性,并可用于一系列医用植入物。