Elia Roberto, Michelson Courtney D, Perera Austin L, Brunner Teresa F, Harsono Masly, Leisk Gray G, Kugel Gerard, Kaplan David L
Department of Biomedical Engineering, Tufts University, Medford, Massachusetts, 02155.
School of Dental Medicine, Tufts University, Boston, Massachusetts, 02111.
J Biomed Mater Res B Appl Biomater. 2015 Nov;103(8):1602-9. doi: 10.1002/jbm.b.33351. Epub 2014 Dec 24.
The aim of this study was to characterize the mechanical properties and drug elution features of silk protein-based electrodeposited dental implant coatings. Silk processing conditions were modified to obtain coatings with a range of mechanical properties on titanium studs. These coatings were assessed for adhesive strength and dissolution, with properties tuned using water vapor annealing or glycerol incorporation to modulate crystalline content. Coating reproducibility was demonstrated over a range of silk concentrations from 1% to 10%. Surface roughness of titanium substrates was altered using industry relevant acid etching and grit blasting, and the effect of surface topography on silk coating adhesion was assessed. Florescent compounds were incorporated into the silk coatings, which were modulated for crystalline content, to achieve four days of sustained release of the compounds. This silk electrogelation technique offers a safe and relatively simple approach to generate mechanically robust, biocompatible, and degradable implant coatings that can also be functionalized with bioactive compounds to modulate the local regenerative tissue environment.
本研究的目的是表征基于丝蛋白的电沉积牙科植入物涂层的机械性能和药物洗脱特性。对丝的加工条件进行了修改,以在钛钉上获得具有一系列机械性能的涂层。对这些涂层的附着力和溶解性进行了评估,并通过水蒸气退火或加入甘油来调节结晶含量,从而调整涂层性能。在1%至10%的一系列丝浓度范围内证明了涂层的可重复性。使用与工业相关的酸蚀和喷砂处理改变钛基底的表面粗糙度,并评估表面形貌对丝涂层附着力的影响。将荧光化合物掺入丝涂层中,对其结晶含量进行调节,以实现化合物四天的持续释放。这种丝电凝胶技术提供了一种安全且相对简单的方法,可生成机械坚固、生物相容且可降解的植入物涂层,该涂层还可用生物活性化合物进行功能化,以调节局部再生组织环境。