Biomaterials and Tissue Engineering Laboratory, Department of Biosciences and Bioengineering, Indian Institute of Technology Guwahati, Guwahati 781039, Assam, India.
Centre for Nanotechnology, Indian Institute of Technology Guwahati, Guwahati 781039, Assam, India.
ACS Appl Mater Interfaces. 2022 Apr 6;14(13):14961-14980. doi: 10.1021/acsami.2c00093. Epub 2022 Mar 23.
Endowing metal implants with multifunctional traits to prevent implant-associated infections and improve osseointegration has become a pivotal facet in orthopedics and dental fixation. Herein, we report the synthesis of mesoporous 70S bioactive glass-silk fibroin nanocomposites inspired by the biomimetic organo-apatites of mineralized collagen. The mesoporous, biomimetic nanocomposites enabled loading of antibiotics (gentamicin and doxycycline) and favored their release in a rapid manner while preserving their bioactivity. Ease in modification of the mesoporous nanocomposites enabled tailoring of 3-(aminopropyl)-triethoxysilane to the silanol network of bioactive glass, which improved the loading capacity of the hydrophobic drug (dexamethasone). The modification favored the slow and sustained release of dexamethasone from the modified mesoporous nanocomposites, which is desired for mediating osteogenesis and immunomodulation. Conformal coatings of these drug-loaded nanocomposites were materialized on stainless-steel implants through a facile electrophoretic deposition (EPD) technique, wherein the deposition yield can be controlled by applied parameters. Antibiotic coatings exhibited antibacterial efficacy with bioactivity retained up to 28 days, while dexamethasone-loaded coatings favored mesenchymal stem cell adhesion and osteoinduction. The immunomodulatory roles were also ascertained, wherein M2 macrophage biasness was favored in dexamethasone-loaded coatings. The versatility of these mesoporous biomimetic nanocomposites guarantee the loading of scenario-specific drugs to aid their local delivery through the conformal EPD coatings developed over metal implants toward improving implant patency.
赋予金属植入物多功能特性以预防植入物相关感染并提高骨整合已成为骨科和牙科固定的关键方面。在此,我们报告了受矿化胶原仿生有机磷灰石启发的介孔 70S 生物活性玻璃-丝素纳米复合材料的合成。介孔仿生纳米复合材料能够负载抗生素(庆大霉素和强力霉素)并有利于快速释放,同时保持其生物活性。介孔纳米复合材料易于修饰,可将 3-(氨丙基)-三乙氧基硅烷修饰到生物活性玻璃的硅醇网络上,从而提高疏水性药物(地塞米松)的载药量。修饰有利于从修饰的介孔纳米复合材料中缓慢持续释放地塞米松,这对于介导成骨和免疫调节是理想的。通过简单的电泳沉积(EPD)技术在不锈钢植入物上实现了这些载药纳米复合材料的共形涂层,其中沉积产率可以通过施加的参数来控制。抗生素涂层表现出抗菌功效,生物活性保留长达 28 天,而负载地塞米松的涂层有利于间充质干细胞黏附和成骨诱导。还确定了其免疫调节作用,其中负载地塞米松的涂层有利于 M2 巨噬细胞偏向。这些介孔仿生纳米复合材料的多功能性保证了特定场景药物的负载,通过在金属植入物上开发的共形 EPD 涂层来促进其局部递送,从而提高植入物的通畅性。