School of Chemical Engineering and Advanced Materials, The University of Adelaide, Adelaide, SA 5005, Australia.
Faculty of Pharmacy, Assiut University, Assiut 71526, Egypt.
ACS Biomater Sci Eng. 2022 Jan 10;8(1):314-327. doi: 10.1021/acsbiomaterials.1c01030. Epub 2021 Dec 29.
This paper presents the development of advanced Ti implants with enhanced antibacterial activity. The implants were engineered using additive manufacturing three-dimensional (3D) printing technology followed by surface modification with electrochemical anodization and hydrothermal etching, to create unique hierarchical micro/nanosurface topographies of microspheres covered with sharp nanopillars that can mechanically kill bacteria in contact with the surface. To achieve enhanced antibacterial performance, fabricated Ti implant models were loaded with gallium nitrate as an antibacterial agent. The antibacterial efficacy of the fabricated substrates with the combined action of sharp nanopillars and locally releasing gallium ions (Ga) was evaluated toward and . Results confirm the significant antibacterial performance of Ga-loaded substrates with a 100% eradication of bacteria. The nanopillars significantly reduced bacterial attachment and prevented biofilm formation while also killing any bacteria remaining on the surface. Furthermore, 3D-printed surfaces with microspheres of diameter 5-30 μm and interspaces of 12-35 μm favored the attachment of osteoblast-like MG-63 cells, as confirmed via the assessment of their attachment, proliferation, and viability. This study provides important progress toward engineering of next-generation 3D-printed implants, that combine surface chemistry and structure to achieve a highly efficacious antibacterial surface with dual cytocompatibility to overcome the limitations of conventional Ti implants.
本文介绍了具有增强抗菌活性的先进 Ti 植入物的开发。植入物采用增材制造三维(3D)打印技术进行设计,然后通过电化学阳极氧化和水热蚀刻进行表面改性,以在微球上创建具有独特的微观/纳米级表面形貌,表面覆盖着锋利的纳米柱,可通过与表面接触来机械杀死细菌。为了实现增强的抗菌性能,制备的 Ti 植入物模型用硝酸镓作为抗菌剂进行负载。评估了具有锋利纳米柱和局部释放镓离子(Ga)协同作用的制造基板的抗菌效果。结果证实,负载 Ga 的基板具有 100%的杀菌效果,具有显著的抗菌性能。纳米柱显著减少了细菌的附着并阻止了生物膜的形成,同时还杀死了表面上残留的任何细菌。此外,直径为 5-30μm 的微球和 12-35μm 的间隔的 3D 打印表面有利于成骨样 MG-63 细胞的附着,这通过评估其附着、增殖和活力得到证实。本研究为下一代 3D 打印植入物的工程设计提供了重要进展,该设计将表面化学和结构相结合,实现了高效的抗菌表面,同时具有双重细胞相容性,克服了传统 Ti 植入物的局限性。