Department of Materials Engineering (MTM), KU Leuven, Kasteelpark Arenberg 44 Box 2450, 3001 Leuven, Belgium.
Centre of Microbial and Plant Genetics (CMPG), KU Leuven, Kasteelpark Arenberg 20 Box 2460, 3001 Leuven, Belgium; Department of Plant Systems Biology, VIB, Technologiepark 927, 9052 Ghent, Belgium.
Colloids Surf B Biointerfaces. 2015 Feb 1;126:481-8. doi: 10.1016/j.colsurfb.2014.12.054. Epub 2015 Jan 7.
Bone implants with open porosity enable fast osseointegration, but also present an increased risk of biofilm-associated infections. We design a novel implant material consisting of a mesoporous SiO2 diffusion barrier (pore diameter: 6.4 nm) with controlled drug release functionality integrated in a macroporous Ti load-bearing structure (fully interconnected open porosity: 30%; pore window size: 0.5-2.0 μm). Using an in vitro tool consisting of Ti/SiO2 disks in an insert set-up, through which molecules can diffuse from feed side to release side, a continuous release without initial burst effect of the antibiofilm compound toremifene is sustained for at least 9 days, while release concentrations (up to 17 μM daily) increase with feed concentrations (up to 4mM). Toremifene diffusivity through the SiO2 phase into H2O is estimated around 10(-13)m(2)/s, suggesting configurational diffusion through mesopores. Candida albicans biofilm growth on the toremifene-release side is significantly inhibited, establishing a proof-of-concept for the drug delivery functionality of mesoporous SiO2 incorporated into a high-strength macroporous Ti carrier. Next-generation implants made of this composite material and equipped with an internal reservoir (feed side) can yield long-term controlled release of antibiofilm compounds, effectively treating infections on the implant surface (release side) over a prolonged time.
具有开放孔隙率的骨植入物能够实现快速的骨整合,但也增加了与生物膜相关感染的风险。我们设计了一种新型植入材料,由具有受控药物释放功能的介孔 SiO2 扩散阻挡层(孔径:6.4nm)组成,集成在大孔 Ti 承载结构中(完全连通的开放孔隙率:30%;孔窗尺寸:0.5-2.0μm)。使用由插入式设置中的 Ti/SiO2 圆盘组成的体外工具,分子可以从进料侧扩散到释放侧,抗生物膜化合物托瑞米芬的持续释放没有初始突释效应,至少持续 9 天,而释放浓度(高达每天 17μM)随进料浓度(高达 4mM)增加。托瑞米芬通过 SiO2 相进入 H2O 的扩散系数估计约为 10(-13)m(2)/s,表明通过介孔进行构象扩散。白色念珠菌生物膜在托瑞米芬释放侧的生长受到显著抑制,证明了介孔 SiO2 结合高强度大孔 Ti 载体的药物输送功能的概念验证。由这种复合材料制成的下一代植入物,并配备内部储库(进料侧)可以实现长效的抗生物膜化合物的控制释放,有效地在长时间内治疗植入物表面(释放侧)的感染。