Lee Seunghun S, Laganenka Leanid, Du Xiaoyu, Hardt Wolf-Dietrich, Ferguson Stephen J
Department of Health Sciences and Technology, Institute for Biomechanics, ETH Zurich, Zurich, Switzerland.
Department of Biology, Institute of Microbiology, ETH Zurich, Zurich, Switzerland.
Front Bioeng Biotechnol. 2021 Dec 15;9:794586. doi: 10.3389/fbioe.2021.794586. eCollection 2021.
Silicon nitride (SiN [SiN]) is a promising bioceramic for use in a wide variety of orthopedic applications. Over the past decades, it has been mainly used in industrial applications, such as space shuttle engines, but not in the medical field due to scarce data on the biological effects of SiN. More recently, it has been increasingly identified as an emerging material for dental and orthopedic implant applications. Although a few reports about the antibacterial properties and osteoconductivity of SiN have been published to date, there have been limited studies of SiN-based scaffolds for bone tissue engineering. Here, we developed a silicon nitride reinforced gelatin/chitosan cryogel system (SiN-GC) by loading silicon nitride microparticles into a gelatin/chitosan cryogel (GC), with the aim of producing a biomimetic scaffold with antibiofilm and osteogenic properties. In this scaffold system, the GC component provides a hydrophilic and macroporous environment for cells, while the SiN component not only provides antibacterial properties and osteoconductivity but also increases the mechanical stiffness of the scaffold. This provides enhanced mechanical support for the defect area and a better osteogenic environment. First, we analyzed the scaffold characteristics of SiN-GC with different SiN concentrations, followed by evaluation of its apatite-forming capacity in simulated body fluid and protein adsorption capacity. We further confirmed an antibiofilm effect of SiN-GC against () and () as well as enhanced cell proliferation, mineralization, and osteogenic gene upregulation for MC3T3-E1 pre-osteoblast cells. Finally, we developed a bioreactor to culture cell-laden scaffolds under cyclic compressive loading to mimic physiological conditions and were able to demonstrate improved mineralization and osteogenesis from SiN-GC. Overall, we confirmed the antibiofilm and osteogenic effect of a silicon nitride reinforced cryogel system, and the results indicate that silicon nitride as a biomaterial system component has a promising potential to be developed further for bone tissue engineering applications.
氮化硅(SiN [SiN])是一种很有前景的生物陶瓷,可用于多种骨科应用。在过去几十年中,它主要用于工业应用,如航天飞机发动机,但由于关于SiN生物效应的数据稀缺,尚未应用于医学领域。最近,它越来越多地被认为是一种用于牙科和骨科植入应用的新兴材料。尽管迄今为止已经发表了一些关于SiN抗菌性能和骨传导性的报告,但关于用于骨组织工程的SiN基支架的研究仍然有限。在这里,我们通过将氮化硅微粒加载到明胶/壳聚糖冷冻凝胶(GC)中,开发了一种氮化硅增强明胶/壳聚糖冷冻凝胶系统(SiN-GC),旨在生产具有抗生物膜和成骨特性的仿生支架。在这个支架系统中,GC成分可为细胞提供亲水性和大孔环境,而SiN成分不仅提供抗菌性能和骨传导性,还增加了支架的机械刚度。这为缺损区域提供了增强的机械支撑和更好的成骨环境。首先,我们分析了不同SiN浓度的SiN-GC的支架特性,然后评估了其在模拟体液中的磷灰石形成能力和蛋白质吸附能力。我们进一步证实了SiN-GC对()和()的抗生物膜作用,以及对MC3T3-E1前成骨细胞的细胞增殖、矿化和成骨基因上调的促进作用。最后,我们开发了一种生物反应器,在循环压缩载荷下培养负载细胞的支架,以模拟生理条件,并能够证明SiN-GC的矿化和成骨能力得到了改善。总体而言,我们证实了氮化硅增强冷冻凝胶系统的抗生物膜和成骨作用,结果表明,氮化硅作为生物材料系统的组成部分,在骨组织工程应用中具有进一步开发的潜力。